Tantalum Capacitors

Image Part Number Description / PDF Quantity Rfq
109D136X9075F2

109D136X9075F2

Vishay

CAP TANT 13UF 10% 75V AXIAL

0

M39006/22-0640

M39006/22-0640

Vishay

CAP TANT 86UF 10% 100V AXIAL

52

M39006/22-0120

M39006/22-0120

Vishay

CAP TANT 300UF 10% 30V AXIAL

0

135D127X9100K2

135D127X9100K2

Vishay

CAP TANT 120UF 10% 100V AXIAL

0

T22C336K075USS

T22C336K075USS

Vishay

T22S336K075CUS

14

109D805X9030C2

109D805X9030C2

Vishay

CAP TANT 8UF 10% 30V AXIAL

0

135D475X9100C2

135D475X9100C2

Vishay

CAP TANT 4.7UF 10% 100V AXIAL

0

T16C107K125EZSS

T16C107K125EZSS

Vishay

CAP TANT 100UF 10% 125V AXIAL

13

135D476X9050F6

135D476X9050F6

Vishay

CAP TANT 47UF 10% 50V AXIAL

0

T34D108K075AZ6S

T34D108K075AZ6S

Vishay

T34S108K075DA6Z

0

135D397X9010T2

135D397X9010T2

Vishay

CAP TANT 390UF 10% 10V AXIAL

0

135D157X9030T2

135D157X9030T2

Vishay

CAP TANT 150UF 10% 30V AXIAL

0

M39006/22-0136

M39006/22-0136

Vishay

CAP TANT 82UF 20% 50V AXIAL

0

135D188X9008K6

135D188X9008K6

Vishay

CAP TANT 1800UF 10% 8V AXIAL

0

M39006/22-0134

M39006/22-0134

Vishay

CAP TANT 60UF 10% 50V AXIAL

0

M39006/22-0265

M39006/22-0265

Vishay

CAP TANT 47UF 10% 10V AXIAL

0

135D157X9010C2

135D157X9010C2

Vishay

CAP TANT 150UF 10% 10V AXIAL

0

135D547X9015K2

135D547X9015K2

Vishay

CAP TANT 540UF 10% 15V AXIAL

0

M39006/22-0105

M39006/22-0105

Vishay

CAP TANT 15UF 10% 30V AXIAL

0

10004-17KS

10004-17KS

Vishay

CAP TANT 940UF 10% 75V AXIAL

8

Tantalum Capacitors

Tantalum capacitors are a type of electrolytic capacitor known for their high capacitance density, stability, and reliability. Utilizing tantalum metal as the anode material, these capacitors form a thin insulating oxide layer as the dielectric, enabling efficient charge storage in compact sizes. Their ability to maintain stable capacitance under varying temperatures and voltages makes them critical components in modern electronics, particularly in applications requiring long-term performance and miniaturization, such as consumer electronics, automotive systems, and medical devices.

2. Main Types and Functional Classification

Type Functional Features Application Examples
Solid Electrolyte Tantalum Capacitors High reliability, low leakage current, and stable performance at elevated temperatures Power supply circuits in smartphones, laptops, and industrial control systems
Wet Electrolyte Tantalum Capacitors High capacitance values, excellent stability over time Aerospace systems, military equipment, and high-reliability energy storage
Polymer Electrolyte Tantalum Capacitors Low equivalent series resistance (ESR), improved safety, and vibration resistance Medical implants (e.g., pacemakers), automotive sensors, and high-frequency circuits

3. Structure and Composition

A typical tantalum capacitor consists of four key components:

  1. Anode: Sintered tantalum metal pellet with porous structure for increased surface area.
  2. Dielectric: A thin layer of tantalum pentoxide (Ta2O5) formed electrochemically on the anode surface.
  3. Electrolyte: Conductive material (solid MnO2, liquid electrolyte, or conductive polymer) serving as the cathode.
  4. Encapsulation: Epoxy resin or ceramic casing for mechanical protection and electrical insulation.

This layered structure ensures high capacitance density while maintaining stability under thermal and electrical stress.

 

4. Key Technical Specifications

Parameter Description Importance
Capacitance (C) Range: 0.1 F to 1000 F Determines energy storage capacity and filtering effectiveness
Rated Voltage (VR) Typically 2.5V to 50V Defines safe operating voltage range without dielectric breakdown
Leakage Current Typically < 0.01 C VR A Affects circuit efficiency and long-term reliability
Equivalent Series Resistance (ESR) 0.1 to 10 (varies by type) Impacts high-frequency performance and thermal dissipation
Operating Temperature Range -55 C to +125 C Determines suitability for industrial and automotive applications

5. Application Fields

  • Consumer Electronics: Mobile phones (decoupling circuits), laptops (power management), and wearable devices.
  • Automotive: Engine control units (ECUs), ADAS sensors, and infotainment systems.
  • Medical Devices: Pacemakers, defibrillators, and diagnostic imaging equipment.
  • Aerospace: Avionics systems, satellite power supplies, and radar equipment.

6. Leading Manufacturers and Representative Products

Manufacturer Product Series Key Features
AVX Corporation TAJ Series Low ESR polymer capacitors for high-frequency applications
KEMET Electronics T511 Series Military-grade wet electrolyte capacitors with extended lifespan
Vishay Intertechnology TVCQ Series Automotive-qualified capacitors with AEC-Q200 compliance

7. Selection Guidelines

Key factors to consider when selecting tantalum capacitors:

  1. Operating Conditions: Ensure rated voltage exceeds circuit requirements by 20-50% to prevent voltage spikes.
  2. Temperature Requirements: Choose appropriate dielectric materials for extreme temperature environments.
  3. Size Constraints: Polymer electrolyte types offer lower ESR in smaller packages for space-limited designs.
  4. Reliability Needs: Prioritize hermetically sealed packages for mission-critical applications (e.g., aerospace).
  5. Cost vs. Performance: Solid electrolyte capacitors provide optimal cost-effectiveness for general electronics.

Always verify compliance with industry standards such as MIL-PRF-55365 for military use or AEC-Q200 for automotive applications.

 

8. Industry Trends and Future Outlook

Key development trends include:

  • Miniaturization: Advancements in powder sintering technology enable 0603/0402 package sizes with capacitance above 100 F.
  • High-Temperature Stability: New dielectric materials extend operational limits to 200 C for EV and 5G infrastructure.
  • ESR Reduction: Conductive polymer electrolytes now achieve ESR below 10m for high-efficiency power systems.
  • Environmental Compliance: Lead-free terminations and RoHS-compliant encapsulation materials becoming standard.
  • Integration: Embedded tantalum capacitors in SiP (System-in-Package) modules for advanced computing.

The global market is projected to grow at 6.2% CAGR through 2030, driven by demand in IoT devices, electric vehicles, and medical electronics.

 

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