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	<title>Solid Capacitor Archives | Dongguan Xuanxuan Electrolytic Technology Co,.ltd</title>
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	<description>Quality Aluminum Electrolytic Capacitors</description>
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		<title>1200uF 4V Solid Polymer Capacitor for Voltage Stabilization Applications</title>
		<link>https://www.xuanxcapacitors.com/capacitors/1200uf-4v-solid-polymer-capacitor-for-voltage-stabilization-applications/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Mon, 16 Mar 2026 12:49:06 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25852</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/1200uf-4v-solid-polymer-capacitor-for-voltage-stabilization-applications/">1200uF 4V Solid Polymer Capacitor for Voltage Stabilization Applications</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid capacitor 1200uf 4v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h3>XE1 Series-Solid Capacitor 1200uf 4v</h3>
<p>● Super low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 502px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">1200UF4V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr>
<td style="width: 27.2899%;">Damp heat（steady state）</td>
<td style="width: 72.1435%;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h3>Dimensions</h3>
<p><img fetchpriority="high" decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233" /></p>
<h3>Rated Ripple Current Correction Coefficient</h3>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h3 class="table-1">Parameters<strong> Table</strong></h3>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">4</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">1200</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">6.3*12</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">560</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5500</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">4</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">1200</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">8*9</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">560</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5900</td>
</tr>
</tbody>
</table>
</div>
<p>
<h3>How to order</h3>
<p>XE1  122  M   0G   D06L12    T</p>
<p>XE1  122  M   0G   D08L09   T</p>
<p>XE1:Series code</p>
<p>122:Capacitance code</p>
<p>M:Capacitance tolerance code</p>
<p>0G:Voltage code</p>
<p>D06L12:Size code</p>
<p>T:Packing number</p>
<h3>Our advantage</h3>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h3>Contact us</h3>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>e-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">xuanxcapacitors.com</a></p>
<p>&nbsp;</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/1200uf-4v-solid-polymer-capacitor-for-voltage-stabilization-applications/">1200uF 4V Solid Polymer Capacitor for Voltage Stabilization Applications</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Compact 560uF 4V Solid Polymer Capacitor for PCB Power Design</title>
		<link>https://www.xuanxcapacitors.com/capacitors/compact-560uf-4v-solid-polymer-capacitor-for-pcb-power-design/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Mon, 16 Mar 2026 12:47:13 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25850</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/compact-560uf-4v-solid-polymer-capacitor-for-pcb-power-design/">Compact 560uF 4V Solid Polymer Capacitor for PCB Power Design</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid capacitor 560uf 4v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h3>XE1 Series-Solid Capacitor 560uf 4v</h3>
<p>● Super low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 502px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">560UF4V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr>
<td style="width: 27.2899%;">Damp heat（steady state）</td>
<td style="width: 72.1435%;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h3>Dimensions</h3>
<p><img decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233" /></p>
<h3>Rated Ripple Current Correction Coefficient</h3>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h3 class="table-1">Parameters<strong> Table</strong></h3>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">4</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">560</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">6.3*8</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5100</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">4</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">560</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">8*9</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5900</td>
</tr>
</tbody>
</table>
</div>
<p>
<h3>How to order</h3>
<p>XE1  561  M   0G   D06L08   T</p>
<p>XE1  561  M   0G   D08L09   T</p>
<p>XE1:Series code</p>
<p>561:Capacitance code</p>
<p>M:Capacitance tolerance code</p>
<p>0G:Voltage code</p>
<p>D06L08:Size code</p>
<p>T:Packing number</p>
<h3>Our advantage</h3>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h3>Contact us</h3>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>e-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">xuanxcapacitors.com</a></p>
<p>&nbsp;</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/compact-560uf-4v-solid-polymer-capacitor-for-pcb-power-design/">Compact 560uF 4V Solid Polymer Capacitor for PCB Power Design</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>680uF 6.3V Solid Polymer Capacitor for Communication Equipment</title>
		<link>https://www.xuanxcapacitors.com/capacitors/680uf-6-3v-solid-polymer-capacitor-for-communication-equipment/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Mon, 16 Mar 2026 12:44:23 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25848</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/680uf-6-3v-solid-polymer-capacitor-for-communication-equipment/">680uF 6.3V Solid Polymer Capacitor for Communication Equipment</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid capacitor 680uf 6.3v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h3>XE1 Series-Solid Capacitor 680uf 6.3v</h3>
<p>● Super low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 502px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">680UF6.3V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr>
<td style="width: 27.2899%;">Damp heat（steady state）</td>
<td style="width: 72.1435%;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h3>Dimensions</h3>
<p><img decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233" /></p>
<h3>Rated Ripple Current Correction Coefficient</h3>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h3 class="table-1">Parameters<strong> Table</strong></h3>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">6.3</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">680</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">5*11</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">10</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">857</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">4100</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">6.3</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">680</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">6.3*8</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">857</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5100</td>
</tr>
</tbody>
</table>
</div>
<p>
<h3>How to order</h3>
<p>XE1  681  M   0J   D05L11   T</p>
<p>XE1:Series code</p>
<p>681:Capacitance code</p>
<p>M:Capacitance tolerance code</p>
<p>0J:Voltage code</p>
<p>D05L11:Size code</p>
<p>T:Packing number</p>
<h3>Our advantage</h3>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h3>Contact us</h3>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>e-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">xuanxcapacitors.com</a></p>
<p>&nbsp;</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/680uf-6-3v-solid-polymer-capacitor-for-communication-equipment/">680uF 6.3V Solid Polymer Capacitor for Communication Equipment</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>220uF 6.3V Solid Polymer Capacitor for High Efficiency Power Supplies</title>
		<link>https://www.xuanxcapacitors.com/capacitors/220uf-6-3v-solid-polymer-capacitor-for-high-efficiency-power-supplies/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Mon, 16 Mar 2026 12:33:09 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25846</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/220uf-6-3v-solid-polymer-capacitor-for-high-efficiency-power-supplies/">220uF 6.3V Solid Polymer Capacitor for High Efficiency Power Supplies</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid capacitor 220uf 6.3v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h3>XE1 Series-Solid Capacitor 220uf 6.3v</h3>
<p>● Super low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 502px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">220UF6.3V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr>
<td style="width: 27.2899%;">Damp heat（steady state）</td>
<td style="width: 72.1435%;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h3>Dimensions</h3>
<p><img decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233" /></p>
<h3>Rated Ripple Current Correction Coefficient</h3>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h3 class="table-1">Parameters<strong> Table</strong></h3>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">6.3</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">220</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">5*8</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">12</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">3900</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left"></td>
</tr>
</tbody>
</table>
</div>
<p>
<h3>How to order</h3>
<p>XE1  221  M   0J   D05L08   T</p>
<p>XE1:Series code</p>
<p>221:Capacitance code</p>
<p>M:Capacitance tolerance code</p>
<p>0J:Voltage code</p>
<p>D05L08:Size code</p>
<p>T:Packing number</p>
<h3>Our advantage</h3>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h3>Contact us</h3>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>e-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">xuanxcapacitors.com</a></p>
<p>&nbsp;</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/220uf-6-3v-solid-polymer-capacitor-for-high-efficiency-power-supplies/">220uF 6.3V Solid Polymer Capacitor for High Efficiency Power Supplies</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>680uF 2.5V Solid Polymer Capacitor for Output Filtering Applications</title>
		<link>https://www.xuanxcapacitors.com/capacitors/680uf-2-5v-solid-polymer-capacitor-for-output-filtering-applications/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Mon, 16 Mar 2026 10:04:31 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25843</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/680uf-2-5v-solid-polymer-capacitor-for-output-filtering-applications/">680uF 2.5V Solid Polymer Capacitor for Output Filtering Applications</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid state capacitor 680uf 2.5v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h2>XE1 Series-Solid State Capacitor 680UF 2.5V</h2>
<p>●  Super Low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 502px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">680UF2.5V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr>
<td style="width: 27.2899%;">Damp heat（steady state）</td>
<td style="width: 72.1435%;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Solid State Capacitor 680UF 2.5V&#8212;Features</h2>
<ul>
<li>High capacity: 680uF large capacitance to meet the needs of various applications.</li>
<li>Low ESR: Low equivalent series resistance ensures high frequency response and efficient power transfer.</li>
<li>Long life: Using high-quality materials and precision manufacturing processes, it has long-term stability and reliability.</li>
<li>Low Leakage Current: Extremely low leakage current helps reduce system power consumption and improve efficiency.</li>
</ul>
<h2>Solid State Capacitor 680UF 2.5V Structure and Working Principle</h2>
<p>The structure of a solid electrolytic capacitor usually consists of an electrolyte layer, an aluminum oxide anode layer, and a conductive layer opposite the anode. During operation, ions in the electrolyte layer move between the two plates under the action of the electric field, forming a capacitive effect. This structure and working principle make solid electrolytic capacitors have high capacitance and stability.</p>
<h2>Dimensions</h2>
<p><img decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233" /></p>
<h2>Rated Ripple Current Correction Coefficient</h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h2 class="table-1">Parameters<strong> Table</strong></h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">680</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">6.3*8</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5100</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">680</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">8*9</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5900</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Application areas</h2>
<p>680uF 2.5V solid electrolytic capacitors are widely used in the following fields:</p>
<ul>
<li>Power management system: for stabilization, filtering and energy storage.</li>
<li>Communication equipment: such as mobile phones, routers, etc.</li>
<li>Automotive electronics: Used for voltage stabilization, energy storage and other functions in automotive circuits.</li>
<li>Industrial control system: used for PLC, driver and other equipment.</li>
<li>Consumer electronics products: such as televisions, stereos, etc.</li>
<li>On-board computer motherboard: Used for power management, voltage stabilization and filtering to improve system performance and reliability.</li>
</ul>
<h2>Our advantage</h2>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h2>Contact us</h2>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>E-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">www.xuanxcapacitors.com</a></p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/680uf-2-5v-solid-polymer-capacitor-for-output-filtering-applications/">680uF 2.5V Solid Polymer Capacitor for Output Filtering Applications</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Reliable 560uF 2.5V Solid Polymer Capacitor for Industrial Automation</title>
		<link>https://www.xuanxcapacitors.com/capacitors/reliable-560uf-2-5v-solid-polymer-capacitor-for-industrial-automation/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Mon, 16 Mar 2026 10:03:57 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25836</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/reliable-560uf-2-5v-solid-polymer-capacitor-for-industrial-automation/">Reliable 560uF 2.5V Solid Polymer Capacitor for Industrial Automation</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid state capacitor 560uf 2.5v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h2>XE1 Series-Solid State Capacitor 560UF 2.5V</h2>
<p>●  Super Low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 502px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">560UF2.5V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr>
<td style="width: 27.2899%;">Damp heat（steady state）</td>
<td style="width: 72.1435%;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Solid State Capacitor 560UF 2.5V&#8212;Features</h2>
<ul>
<li>High capacity: 560uF large capacitance to meet the needs of various applications.</li>
<li>Low ESR: Low equivalent series resistance ensures high frequency response and efficient power transfer.</li>
<li>Long life: Using high-quality materials and precision manufacturing processes, it has long-term stability and reliability.</li>
<li>Low Leakage Current: Extremely low leakage current helps reduce system power consumption and improve efficiency.</li>
</ul>
<h2>Solid State Capacitor 560UF 2.5V Structure and Working Principle</h2>
<p>The structure of a solid electrolytic capacitor usually consists of an electrolyte layer, an aluminum oxide anode layer, and a conductive layer opposite the anode. During operation, ions in the electrolyte layer move between the two plates under the action of the electric field, forming a capacitive effect. This structure and working principle make solid electrolytic capacitors have high capacitance and stability.</p>
<h2>Dimensions</h2>
<p><img decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233" /></p>
<h2>Rated Ripple Current Correction Coefficient</h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h2 class="table-1">Parameters<strong> Table</strong></h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">560</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">5*8</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">12</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">4100</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">560</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">6.3*8</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5100</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Application areas</h2>
<p>560uF 2.5V solid electrolytic capacitors are widely used in the following fields:</p>
<ul>
<li>Power management system: for stabilization, filtering and energy storage.</li>
<li>Communication equipment: such as mobile phones, routers, etc.</li>
<li>Automotive electronics: Used for voltage stabilization, energy storage and other functions in automotive circuits.</li>
<li>Industrial control system: used for PLC, driver and other equipment.</li>
<li>Consumer electronics products: such as televisions, stereos, etc.</li>
<li>On-board computer motherboard: Used for power management, voltage stabilization and filtering to improve system performance and reliability.</li>
</ul>
<h2>Our advantage</h2>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h2>Contact us</h2>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>E-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">www.xuanxcapacitors.com</a></p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/reliable-560uf-2-5v-solid-polymer-capacitor-for-industrial-automation/">Reliable 560uF 2.5V Solid Polymer Capacitor for Industrial Automation</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Optimize Your Electronics with Solid State Capacitor 1500UF 2.5V</title>
		<link>https://www.xuanxcapacitors.com/capacitors/optimize-your-electronics-with-solid-state-capacitor-1500uf-2-5v/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Mon, 16 Mar 2026 07:21:46 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25828</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/optimize-your-electronics-with-solid-state-capacitor-1500uf-2-5v/">Optimize Your Electronics with Solid State Capacitor 1500UF 2.5V</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid state capacitor 1500uf 2.5v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h2>XE1 Series-Solid State Capacitor 1500UF 2.5V</h2>
<p>●  Super Low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 502px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">1500UF2.5V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr>
<td style="width: 27.2899%;">Damp heat（steady state）</td>
<td style="width: 72.1435%;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Solid State Capacitor 1500UF 2.5V&#8212;Features</h2>
<ul>
<li>High capacity: 1500uF large capacitance to meet the needs of various applications.</li>
<li>Low ESR: Low equivalent series resistance ensures high frequency response and efficient power transfer.</li>
<li>Long life: Using high-quality materials and precision manufacturing processes, it has long-term stability and reliability.</li>
<li>Low Leakage Current: Extremely low leakage current helps reduce system power consumption and improve efficiency.</li>
</ul>
<h2>Solid State Capacitor 1500UF 2.5V Structure and Working Principle</h2>
<p>The structure of a solid electrolytic capacitor usually consists of an electrolyte layer, an aluminum oxide anode layer, and a conductive layer opposite the anode. During operation, ions in the electrolyte layer move between the two plates under the action of the electric field, forming a capacitive effect. This structure and working principle make solid electrolytic capacitors have high capacitance and stability.</p>
<h2>Dimensions</h2>
<p><img decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233" /></p>
<h2>Rated Ripple Current Correction Coefficient</h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h2 class="table-1">Parameters<strong> Table</strong></h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">1000</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">8*9</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5900</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">1000</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">8*12</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">6100</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Application areas</h2>
<p>1500uF 2.5V solid electrolytic capacitors are widely used in the following fields:</p>
<ul>
<li>Power management system: for stabilization, filtering and energy storage.</li>
<li>Communication equipment: such as mobile phones, routers, etc.</li>
<li>Automotive electronics: Used for voltage stabilization, energy storage and other functions in automotive circuits.</li>
<li>Industrial control system: used for PLC, driver and other equipment.</li>
<li>Consumer electronics products: such as televisions, stereos, etc.</li>
<li>On-board computer motherboard: Used for power management, voltage stabilization and filtering to improve system performance and reliability.</li>
</ul>
<h2>Our advantage</h2>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h2>Contact us</h2>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>E-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">www.xuanxcapacitors.com</a></p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/optimize-your-electronics-with-solid-state-capacitor-1500uf-2-5v/">Optimize Your Electronics with Solid State Capacitor 1500UF 2.5V</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Solid State Capacitor 1200UF 2.5V Efficient Power Solutions</title>
		<link>https://www.xuanxcapacitors.com/capacitors/solid-state-capacitor-1200uf-2-5v-efficient-power-solutions/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Mon, 16 Mar 2026 07:09:49 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25826</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/solid-state-capacitor-1200uf-2-5v-efficient-power-solutions/">Solid State Capacitor 1200UF 2.5V Efficient Power Solutions</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid state capacitor 1200uf 2.5v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h2>XE1 Series-Solid State Capacitor 1200UF 2.5V</h2>
<p>●  Super Low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 690px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 20px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 20px;" align="left">1200UF2.5V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 192px;">
<td style="width: 27.2899%; height: 192px;">Damp heat（steady state）</td>
<td style="width: 72.1435%; height: 192px;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Solid State Capacitor 1200UF 2.5V&#8212;Features</h2>
<ul>
<li>High capacity: 1200uF large capacitance to meet the needs of various applications.</li>
<li>Low ESR: Low equivalent series resistance ensures high frequency response and efficient power transfer.</li>
<li>Long life: Using high-quality materials and precision manufacturing processes, it has long-term stability and reliability.</li>
<li>Low Leakage Current: Extremely low leakage current helps reduce system power consumption and improve efficiency.</li>
</ul>
<h2>Solid State Capacitor 1200UF 2.5V Structure and Working Principle</h2>
<p>The structure of a solid electrolytic capacitor usually consists of an electrolyte layer, an aluminum oxide anode layer, and a conductive layer opposite the anode. During operation, ions in the electrolyte layer move between the two plates under the action of the electric field, forming a capacitive effect. This structure and working principle make solid electrolytic capacitors have high capacitance and stability.</p>
<h2>Dimensions</h2>
<p><img decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233" /></p>
<h2>Rated Ripple Current Correction Coefficient</h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h2 class="table-1">Parameters<strong> Table</strong></h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">1000</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">8*9</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">5900</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">1000</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">8*12</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">500</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">6100</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Application areas</h2>
<p>1200uF 2.5V solid electrolytic capacitors are widely used in the following fields:</p>
<ul>
<li>Power management system: for stabilization, filtering and energy storage.</li>
<li>Communication equipment: such as mobile phones, routers, etc.</li>
<li>Automotive electronics: Used for voltage stabilization, energy storage and other functions in automotive circuits.</li>
<li>Industrial control system: used for PLC, driver and other equipment.</li>
<li>Consumer electronics products: such as televisions, stereos, etc.</li>
<li>On-board computer motherboard: Used for power management, voltage stabilization and filtering to improve system performance and reliability.</li>
</ul>
<h2>Our advantage</h2>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h2>Contact us</h2>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>E-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">www.xuanxcapacitors.com</a></p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/solid-state-capacitor-1200uf-2-5v-efficient-power-solutions/">Solid State Capacitor 1200UF 2.5V Efficient Power Solutions</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Small solid capacitor 1500μF 2.5V</title>
		<link>https://www.xuanxcapacitors.com/capacitors/small-solid-capacitor-1500%ce%bcf-2-5v/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Fri, 06 Mar 2026 10:23:02 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=26241</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/small-solid-capacitor-1500%ce%bcf-2-5v/">Small solid capacitor 1500μF 2.5V</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The Small solid capacitor 1500μF 2.5V is designed for compact electronic applications that demand stable performance and efficiency. With a capacitance of 1500μF and a rated voltage of 2.5V, it ensures low equivalent series resistance (ESR) and excellent high-frequency performance. Its solid electrolyte offers enhanced temperature stability and extended lifespan, making it suitable for high-reliability applications like motherboards, power supplies, and telecommunication devices. This capacitor is ideal for voltage stabilization, filtering, and decoupling in circuits that require fast charge and discharge cycles.</p>
<h2>XE1 Small solid capacitor 1500μF 2.5V</h2>
<p>● Low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 709px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left"> Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">1500μF 2.5V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 25px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 25px;" align="left">±20% (M)                                                    (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)                tanδ (max.)=0.12(10~25V)             (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25                      (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 192px;">
<td style="width: 27.2899%; height: 192px;">Damp heat（steady state）</td>
<td style="width: 72.1435%; height: 192px;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<h2>Dimensions-Small solid capacitor 1500μF 2.5V</h2>
<p><img decoding="async" class="alignnone wp-image-5345 size-full" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="Small solid capacitor 1500μF 2.5V" width="901" height="233" /></p>
<h2>Rated Ripple Current Correction Coefficient</h2>

<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h2 class="table-1">Parameters<strong> Table</strong></h2>

<div class="table-1">
<table style="width: 100%; height: 144px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 69px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 69px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 69px; text-align: center; width: 14.3175%;" align="left">Case size     D*L(mm)</th>
<th style="height: 69px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">      ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 69px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 69px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 37px; width: 16.6482%; text-align: center;" align="left">2.5</td>
<td style="height: 37px; width: 19.9778%; text-align: center;" align="left">1500</td>
<td style="height: 37px; width: 14.3175%; text-align: center;" align="left">8*12</td>
<td style="height: 37px; width: 17.9798%; text-align: center;" align="left">8</td>
<td style="height: 37px; width: 15.7604%; text-align: center;" align="left">750</td>
<td style="height: 37px; width: 13.6515%; text-align: center;" align="left">6100</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left"></td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left"></td>
</tr>
</tbody>
</table>
</div>
<h2>Small solid capacitor 1500μF 2.5V Applications</h2>
<p>Solid capacitors, also known as solid capacitors, are electronic components favored for their superior performance and reliability compared to traditional electrolytic capacitors. Solid capacitors use solid electrolyte materials rather than liquid or gel electrolytes, which makes them more resistant to temperature fluctuations, mechanical stress, and aging. Here are some common applications for solid state capacitors:</p>
<ul>
<li>Computer motherboards and graphics cards: Solid capacitors are commonly used in computer motherboards and graphics cards for voltage stabilization, filtering, decoupling and other purposes. They provide stable and reliable performance, <a href="https://www.xuanxcapacitors.com/">which</a> is critical to the smooth operation of these components.</li>
<li>Power supplies: Solid-state capacitors are used in power supply units (PSUs) for computers, servers, and other electronic equipment. They help stabilize the output voltage, reduce ripple and noise, and improve the overall efficiency and reliability of the power supply.</li>
<li>Telecommunications equipment: Solid-state capacitors are used in telecommunications equipment such as routers, switches and base stations. They are used in these devices for filtering, voltage stabilization and energy storage, ensuring reliable operation <a href="https://xuansncapacitor.com/">under</a> a variety of conditions.</li>
<li>Consumer Electronics: Solid-state capacitors are increasingly used in consumer electronics such as LCD televisions, game consoles, audio amplifiers and DVD players. They provide stable voltage regulation, helping to improve the performance and longevity of these devices.</li>
<li>Automotive Electronics: In automotive electronics applications, solid-state capacitors are used in a variety of systems, including engine control units (ECUs), infotainment systems, power management modules, and LED lighting systems. Their robustness and resistance to high temperatures and vibrations make them ideal for automotive use.</li>
<li>Industrial Automation: Solid-state capacitors are used in industrial automation equipment such as programmable logic controllers (PLCs), motor drives, sensors, and industrial robots. They ensure reliable operation in harsh environments such as temperature fluctuations, humidity and mechanical vibration.</li>
<li>Renewable energy systems: Solid-state capacitors are used in renewable energy systems such as solar inverters, wind turbines, and energy storage systems. They help stabilize voltage fluctuations, improve energy efficiency and enhance the reliability of these systems.</li>
<li>Medical Devices: In medical devices and equipment, solid-state capacitors are used for a variety of purposes, including power management, signal conditioning, and data acquisition. Their reliability and stability are critical to the accurate operation of medical devices.</li>
<li>Aerospace and Defense: Solid-state capacitors are also used in aerospace and defense applications such as avionics, radar systems, missile guidance systems and satellite communications equipment. They are able to withstand the extreme temperatures, radiation and mechanical shock encountered in these environments.</li>
</ul>
<h2>Our advantage</h2>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h2>Contact us</h2>
<p>We are a supplier of electrolytic capacitor, and we have rich experiences in this field. Our daily production capacity can reach  7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>e-mail：  <a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）:+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">xuanxcapacitors.com</a></p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/small-solid-capacitor-1500%ce%bcf-2-5v/">Small solid capacitor 1500μF 2.5V</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Solid State Capacitor 330UF 12V Low ESR Board Computer Motherboard</title>
		<link>https://www.xuanxcapacitors.com/capacitors/solid-state-capacitor-330uf-12v-low-esr-board-computer-motherboard/</link>
		
		<dc:creator><![CDATA[XuanxCapacitors]]></dc:creator>
		<pubDate>Fri, 01 Mar 2024 07:55:23 +0000</pubDate>
				<guid isPermaLink="false">https://www.xuanxcapacitors.com/?post_type=product&#038;p=25792</guid>

					<description><![CDATA[<p>Type: Radial type Operating Temperature:-55℃~+105℃ Life:2000hours Applications:fast charging sources, 5G base stations, PC motherboards,etc. Manufacturer:XUANSN</p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/solid-state-capacitor-330uf-12v-low-esr-board-computer-motherboard/">Solid State Capacitor 330UF 12V Low ESR Board Computer Motherboard</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>The full name of solid state capacitor 330uf 12v is: solid aluminum electrolytic capacitors. The biggest difference between it and ordinary capacitors (ie, liquid aluminum electrolytic capacitors) is the use of different dielectric materials. The dielectric material of liquid aluminum capacitors is electrolyte, while the dielectric material of solid capacitors is conductive polymer materials.</p>
<h2>XE2 Series-Solid State Capacitor 330UF 12V</h2>
<p>●&nbsp; Low ESR, High ripple current<br />
● Load life of 2000hours at 105℃<br />
● RoHS Compliant</p>
</p>
<div class="table-1">
<table style="width: 100%; height: 502px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="width: 27.2899%; height: 24px;" align="left">&nbsp;Item</th>
<th style="width: 72.1435%; height: 24px;" align="left">Characteristics</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Temperature Range</td>
<td style="width: 72.1435%; height: 24px;" align="left">-55~+105℃</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Specification</td>
<td style="width: 72.1435%; height: 24px;" align="left">330UF12V</td>
</tr>
<tr style="height: 10px;">
<td style="width: 27.2899%; height: 10px;" align="left">Capacitance Tolerance</td>
<td style="width: 72.1435%; height: 10px;" align="left">±20% (M)&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 24px;">
<td style="width: 27.2899%; height: 24px;" align="left">Dissipation Factor (tanδ)</td>
<td style="width: 72.1435%; height: 24px;" align="left">tanδ (max.)=0.08(2.5~7.5V)&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; tanδ (max.)=0.12(10~25V) &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; (at 20°C, 120Hz)</td>
</tr>
<tr style="height: 36px;">
<td style="width: 27.2899%; height: 36px;">Leakage Current</td>
<td style="width: 72.1435%; height: 36px;">I≤0.2CV or 500μA（take the maximum）<br />
Where, I: Max.leakage current (μA), C: Nominal capacitance (μF),V:Rated voltage (V),(at 20 °C after 2 minutes)</td>
</tr>
<tr style="height: 48px;">
<td style="width: 27.2899%; height: 48px;" align="left">Low Temperature Characteristics (Max. Impedance Ratio)</td>
<td style="width: 72.1435%; height: 48px;" align="left">Z(-25°C)/Z(+20°C)≦1.25<br />
Z(-40°C)/Z(+20°C)≦1.25&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; (at 100kHz)</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Endurance</td>
<td style="width: 72.1435%; height: 120px;" align="left">The following specifications shall be satisfied when the capacitors are restored to 20°C after DC voltage plus the rated ripple current is applied for 2,000 hours at 105°C.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr>
<td style="width: 27.2899%;">Damp heat（steady state）</td>
<td style="width: 72.1435%;">The specifications listed below shall be satisfied when the capacitors are restored to 20℃ after application of rated voltage for 1000 hours at 60℃,90%~95%RH.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 72px;">
<td style="width: 27.2899%; height: 72px;" align="left">Surge Voltage</td>
<td style="width: 72.1435%; height: 72px;" align="left">Surge voltage = rated voltage * 1.15 (V)</p>
<p>The capacitors shall be subjected to 1000 cycles each consisting of charge with the surge voltages specified at 105℃ for 30 seconds through a protective resistor（Rc=1kΩ）and discharge for 5 minutes 30 seconds</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
<tr style="height: 120px;">
<td style="width: 27.2899%; height: 120px;" align="left">Resistance to soldering heat</td>
<td style="width: 72.1435%; height: 120px;" align="left">Measurement for solder temperature profile shall be made at the capacitor top and the terminal.</p>
<p>Capacitance Change :≤±20% of the initial value<br />
D.F. (tanδ):≤150% of the initial specified value<br />
ESR:≤150% of the initial specified value<br />
Leakage Current :≤The initial specified value</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Solid State Capacitor 330UF 12V&#8212;Features</h2>
<ul>
<li>High capacity: 330uF large capacitance to meet the needs of various applications.</li>
<li>Low ESR: Low equivalent series resistance ensures high frequency response and efficient power transfer.</li>
<li>Long life: Using high-quality materials and precision manufacturing processes, it has long-term stability and reliability.</li>
<li>Low Leakage Current: Extremely low leakage current helps reduce system power consumption and improve efficiency.</li>
</ul>
<h2>Solid State Capacitor 330UF 12V Structure and Working Principle</h2>
<p>The structure of a solid electrolytic capacitor usually consists of an electrolyte layer, an aluminum oxide anode layer, and a conductive layer opposite the anode. During operation, ions in the electrolyte layer move between the two plates under the action of the electric field, forming a capacitive effect. This structure and working principle make solid electrolytic capacitors have high capacitance and stability.</p>
<h2>Dimensions</h2>
<p><img decoding="async" class="alignnone size-full wp-image-5345" src="http://solidcapacitor.com/wp-content/uploads/2022/09/capacitor.jpg" alt="capacitor" width="901" height="233"></p>
<h2>Rated Ripple Current Correction Coefficient</h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 48px;" width="100%">
<thead>
<tr style="height: 24px;">
<th style="height: 24px; text-align: center;" align="left">Frequency (Hz)</th>
<th style="height: 24px; text-align: center;" align="left">120Hz≦f＜1kHz</th>
<th style="height: 24px; text-align: center;" align="left">1kHz≦f＜10kHz</th>
<th style="height: 24px; text-align: center;" align="left">10kHz≦f＜100kHz</th>
<th style="height: 24px; text-align: center;" align="left">100kHz≦f＜500kHz</th>
</tr>
</thead>
<tbody>
<tr style="height: 24px;">
<td style="height: 24px; text-align: center;" align="left">Coefficient</td>
<td style="height: 24px; text-align: center;" align="left">0.05</td>
<td style="height: 24px; text-align: center;" align="left">0.30</td>
<td style="height: 24px; text-align: center;" align="left">0.70</td>
<td style="height: 24px; text-align: center;" align="left">1.00</td>
</tr>
</tbody>
</table>
<p>
</div>
<h2 class="table-1">Parameters<strong> Table</strong></h2>
</p>
<div class="table-1">
<table style="width: 100%; height: 86px;" width="100%">
<thead>
<tr style="height: 10px;">
<th style="height: 10px; text-align: center; width: 16.6482%;" align="left">Rated voltage（V）</th>
<th style="height: 10px; text-align: center; width: 19.9778%;" align="left">Rated Capacitance（μf）</th>
<th style="height: 10px; text-align: center; width: 14.3175%;" align="left">Case size&nbsp; &nbsp; &nbsp;D*L(mm)</th>
<th style="height: 10px; text-align: left; width: 17.9798%;" align="left">
<p style="text-align: center;">&nbsp; &nbsp; &nbsp; ESR(mΩ）</p>
<p style="text-align: center;">at 20℃ 100kHz</p>
</th>
<th style="height: 10px; width: 15.7604%; text-align: center;" align="left">Leakage Current</p>
<p>(μA)</th>
<th style="height: 10px; width: 13.6515%; text-align: center;" align="left">Rated ripple current（mArms/105℃/100kHz）</th>
</tr>
</thead>
<tbody>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">12</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">330</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">5*9</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">20</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">648</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">2690</td>
</tr>
<tr style="height: 38px;">
<td style="height: 38px; width: 16.6482%; text-align: center;" align="left">12</td>
<td style="height: 38px; width: 19.9778%; text-align: center;" align="left">330</td>
<td style="height: 38px; width: 14.3175%; text-align: center;" align="left">6.3*8</td>
<td style="height: 38px; width: 17.9798%; text-align: center;" align="left">18</td>
<td style="height: 38px; width: 15.7604%; text-align: center;" align="left">792</td>
<td style="height: 38px; width: 13.6515%; text-align: center;" align="left">3200</td>
</tr>
</tbody>
</table>
</div>
<p>
<h2>Application areas</h2>
<p>330uF 2.5V solid electrolytic capacitors are widely used in the following fields:</p>
<ul>
<li>Power management system: for stabilization, filtering and energy storage.</li>
<li>Communication equipment: such as mobile phones, routers, etc.</li>
<li>Automotive electronics: Used for voltage stabilization, energy storage and other functions in automotive circuits.</li>
<li>Industrial control system: used for PLC, driver and other equipment.</li>
<li>Consumer electronics products: such as televisions, stereos, etc.</li>
<li>On-board computer motherboard: Used for power management, voltage stabilization and filtering to improve system performance and reliability.</li>
</ul>
<h2>Our advantage</h2>
<p>1. Have 18 years experiences in capacitor industry. Be able to quickly understand the needs of customers and give feedback quickly.</p>
<p>2. Covers all capacitors: Electrolytic capacitors, film capacitors, safety capacitors, ceramic capacitors, super capacitors.</p>
<p>3.With 200 production lines, the sample delivery time is 3 days, and the bulk goods delivery time is 2 weeks.</p>
<p>4.The company has its own R&amp;D team and after-sales team, providing complete pre-sale, in-sale and after-sale services.</p>
<h2>Contact us</h2>
<p>We are a supplier of&nbsp;electrolytic&nbsp;capacitor, and we have rich experiences in this field. Our daily production capacity can reach&nbsp; 7 million electrolytic capacitors, the sample period is 3 days, and the production cycle is 10 days. We will give you great support in terms of price, quality and delivery time.</p>
<p>And Support Customer’s Visit To The Factory</p>
<p>e-mail：&nbsp;&nbsp;<a href="mailto:coco@xuanxcapacitors.com">coco@xuanxcapacitors.com</a></p>
<p>Pho（whatsapp）：+ 86-18825879082</p>
<p>Skype：Coco.psh</p>
<p>website：<a href="https://www.xuanxcapacitors.com/">www.xuanxcapacitors.com</a></p>
<p>The post <a href="https://www.xuanxcapacitors.com/capacitors/solid-state-capacitor-330uf-12v-low-esr-board-computer-motherboard/">Solid State Capacitor 330UF 12V Low ESR Board Computer Motherboard</a> appeared first on <a href="https://www.xuanxcapacitors.com">Dongguan Xuanxuan Electrolytic Technology Co,.ltd</a>.</p>
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