Tantalum - Polymer Capacitors

Image Part Number Description / PDF Quantity Rfq
F320E227MBA

F320E227MBA

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CAP TANT POLY 220UF 2.5V 1411

0

F311A476MBA

F311A476MBA

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CAP TANT POLY 47UF 10V 1411

0

F310J476MBA

F310J476MBA

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CAP TANT POLY 47UF 6.3V 1411

0

F321A336MAA

F321A336MAA

Nichicon

CAP TANT POLY 33UF 10V 1206

0

F320J157MCC

F320J157MCC

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CAP TANT POLY 150UF 6.3V 2312

0

F380G106MMA

F380G106MMA

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CAP TANT POLY 10UF 4V 0603

0

F310G336MAA

F310G336MAA

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CAP TANT POLY 33UF 4V 1206

0

F380G336MSA

F380G336MSA

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CAP TANT POLY 33UF 4V 0805

0

F310J226MAA

F310J226MAA

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CAP TANT POLY 22UF 6.3V 1206

0

F320E337MCC

F320E337MCC

Nichicon

CAP TANT POLY 330UF 2.5V 2312

0

F320G227MCC

F320G227MCC

Nichicon

CAP TANT POLY 220UF 4V 2312

0

F321A107MCC

F321A107MCC

Nichicon

CAP TANT POLY 100UF 10V 2312

0

F310E476MAA

F310E476MAA

Nichicon

CAP TANT POLY 47UF 2.5V 1206

0

F321A157MCC

F321A157MCC

Nichicon

CAP TANT POLY 150UF 10V 2312

0

F320G337MCC

F320G337MCC

Nichicon

CAP TANT POLY 330UF 4V 2312

0

F311A106MAA

F311A106MAA

Nichicon

CAP TANT POLY 10UF 10V 1206

0

F310E336MAA

F310E336MAA

Nichicon

CAP TANT POLY 33UF 2.5V 1206

0

Tantalum - Polymer Capacitors

1. Overview

Tantalum polymer capacitors are a type of electrolytic capacitor utilizing conductive polymer as the electrolyte and tantalum metal as the anode. Compared to traditional liquid-electrolyte tantalum capacitors, they offer lower equivalent series resistance (ESR), higher thermal stability, and longer operational lifespan. Their ability to deliver stable capacitance in compact packages makes them critical components in modern electronics for power management, noise filtering, and energy storage.

2. Main Types and Functional Classification

Type Functional Features Application Examples
Solid Polymer Electrolyte Ultra-low ESR (<10m ), high ripple current tolerance High-frequency DC-DC converters
Hybrid Polymer-Electrolyte Combines polymer and liquid electrolyte for cost-performance balance Consumer electronics power supplies
High-Voltage Polymer Rated voltage >25V with enhanced dielectric strength Industrial motor drives

3. Structure and Composition

Typical construction includes:

  • Anode: Sintered tantalum pellet with porous structure
  • Dielectric: Thin Ta2O5 layer formed via anodization
  • Electrolyte: Conductive polymer (e.g., PEDOT:PSS) coating
  • Cathode: Graphite/silver layered termination

The porous anode structure maximizes surface area while the polymer electrolyte provides solid-state reliability.

4. Key Technical Specifications

Parameter Significance
Capacitance Range: 10 F - 1000 F Determines energy storage capacity
Rated Voltage: 2.5V - 50V Defines maximum operational voltage
ESR: <20m typical Impacts power efficiency and thermal performance
Leakage Current: <0.01C*V Affects battery-powered device standby consumption
Operating Temperature: -55 C to +125 C Ensures reliability in harsh environments

5. Application Fields

  • Consumer Electronics: Smartphone power management modules
  • Automotive: Engine control units (ECUs) and ADAS systems
  • Industrial: Programmable logic controllers (PLCs)
  • Medical: Portable diagnostic equipment power filtering
  • Telecom: 5G base station RF amplifiers

6. Leading Manufacturers and Products

Manufacturer Product Series Key Features
Vishay T55 Series 2000 hours life at 105 C
AVX TACMIC Military-grade vibration resistance
KEMET A700 Series Automotive AEC-Q200 qualified

7. Selection Guidelines

Key considerations:

  • Capacitance-voltage (CV) product must exceed circuit requirements by 20%
  • ESR requirements for high-frequency noise suppression
  • Package size constraints (e.g., 3216 vs 7343)
  • Temperature derating: Reduce rated voltage by 30% at 125 C
  • Failure mode analysis for safety-critical applications

8. Industry Trends

Emerging developments include:

  • Nano-structured polymer electrolytes enabling 30% higher capacitance density
  • Low-flammability materials for EV battery management systems
  • Embedded capacitor technology for 5G RF modules
  • AI-driven accelerated life testing methods

Market demand is projected to grow at 6.2% CAGR through 2030, driven by automotive electrification and IoT device proliferation.

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