Electric Double Layer Capacitors (EDLC), Supercapacitors

Image Part Number Description / PDF Quantity Rfq
357DCN2R7M

357DCN2R7M

Cornell Dubilier Electronics

CAP 350F 20% 2.7V T/H

0

306DCN2R7M

306DCN2R7M

Cornell Dubilier Electronics

CAP 30F 20% 2.7V T/H

0

EDLNF105B5R5C

EDLNF105B5R5C

Cornell Dubilier Electronics

CAP 1F 5.5V THROUGH HOLE

1

506DCR2R3SKV

506DCR2R3SKV

Cornell Dubilier Electronics

CAP 50F -20% +50% 2.3V T/H

0

157DER2R5SCP

157DER2R5SCP

Cornell Dubilier Electronics

CAP 150F -20% +50% 2.5V T/H

0

DGH705Q2R7

DGH705Q2R7

Cornell Dubilier Electronics

CAPACITOR 7F -10% +30% 2.7V TH

3593

DSF705Q3R0

DSF705Q3R0

Cornell Dubilier Electronics

7F 3.0V 10*25

281

DGH335Q2R7

DGH335Q2R7

Cornell Dubilier Electronics

CAPACITOR 3.3F -10% +30% 2.7V TH

3759

DGH407Q2R7

DGH407Q2R7

Cornell Dubilier Electronics

CAP 400F -10% +30% 2.7V T/H

35150

DGH105Q2R7

DGH105Q2R7

Cornell Dubilier Electronics

CAPACITOR 1F -10% +30% 2.7V TH

9142

107DCN2R7Q

107DCN2R7Q

Cornell Dubilier Electronics

CAP 100F -10%, +30% 2.7V T/H

2000

DGH156Q2R7

DGH156Q2R7

Cornell Dubilier Electronics

CAPACITOR 15F -10% +30% 2.7V TH

28621000

DSF607Q3R0

DSF607Q3R0

Cornell Dubilier Electronics

600F 3.0V 35*70

0

407DCN2R7Q

407DCN2R7Q

Cornell Dubilier Electronics

CAP 400F -10%, +30% 2.7V T/H

433880

105DCN2R7S

105DCN2R7S

Cornell Dubilier Electronics

CAP 1F -20%, +50% 2.7V T/H

29267000

EDC155Z5R5C

EDC155Z5R5C

Cornell Dubilier Electronics

CAP 1.5F -20% +80% 5.5V T/H

495250

EDC105Z5R5V

EDC105Z5R5V

Cornell Dubilier Electronics

CAP 1F -20% +80% 5.5V T/H

725

DSF305Q3R0

DSF305Q3R0

Cornell Dubilier Electronics

3F 3.0V 8*20

24391500

DGH256Q2R7

DGH256Q2R7

Cornell Dubilier Electronics

CAPACITOR 25F -10% +30% 2.7V TH

5048

407DCN2R7K

407DCN2R7K

Cornell Dubilier Electronics

CAP 400F 10% 2.7V T/H

0

Electric Double Layer Capacitors (EDLC), Supercapacitors

1. Overview

Electric Double Layer Capacitors (EDLC), commonly referred to as supercapacitors, are electrochemical energy storage devices that bridge the gap between conventional capacitors and batteries. They store energy through electrostatic charge separation at the electrode-electrolyte interface, offering high power density, rapid charge/discharge cycles, and exceptional cycle life (up to 1 million cycles). Their importance in modern technology lies in enabling energy-efficient systems for applications requiring burst power, energy recovery, and backup power solutions.

2. Main Types and Functional Classification

Type Functional Features Application Examples
EDLC (Carbon-based) High power density, long cycle life, low energy density Regenerative braking systems, UPS
Pseudocapacitors Higher energy density via redox reactions, moderate cycle life Portable electronics, grid energy storage
Hybrid Supercapacitors Combines EDLC and battery materials for balanced energy/power density Electric vehicles, renewable energy systems

3. Structure and Composition

A typical supercapacitor consists of two activated carbon electrodes separated by a porous membrane, immersed in an electrolyte (aqueous, organic, or ionic liquid). The electrodes are coated on current collectors (usually aluminum foil), and the entire assembly is enclosed in a hermetically sealed metal or polymer casing. Advanced designs incorporate graphene or carbon nanotubes to enhance surface area and conductivity.

4. Key Technical Specifications

Parameter Description & Importance
Capacitance (F) Determines charge storage capacity (range: 1 F to 5000 F)
Rated Voltage (V) Limits operational voltage (2.5 V 3.0 V per cell)
Equivalent Series Resistance (ESR) Affects power delivery efficiency (low ESR enables high pulse currents)
Energy Density (Wh/kg) Typical range: 5 50 Wh/kg
Power Density (kW/kg) Typical range: 1 10 kW/kg
Cycle Life Exceeds 100,000 cycles with minimal degradation

5. Application Fields

  • Consumer Electronics: Smart meters, LED flashlights
  • Automotive: Start-stop systems, kinetic energy recovery systems (KERS)
  • Industrial: Robotics, backup power for PLCs
  • Renewable Energy: Solar/wind energy storage, grid frequency regulation
  • Transportation: Trams, buses, and hybrid vehicles

6. Leading Manufacturers and Representative Products

Manufacturer Product Series Key Specifications
Maxwell Technologies (Tesla) BoostCap BC Series 10 F 3400 F, 2.7 V, ESR < 0.5 m
Panasonic Gold Capacitor Series 5 F 1000 F, 3.0 V, 10-year lifespan
Skeleton Technologies SkelCap Series 1200 F 5000 F, 2.85 V, 40 kW/kg power density
Samsung SDI
Supercapacitor Modules 50 F 2000 F, automotive-grade durability

7. Selection Recommendations

Key considerations include:

  • Application Requirements: Prioritize power density for pulse applications or energy density for long-duration backup
  • Voltage Matching: Use cell-balancing circuits for multi-cell stacks
  • Operating Environment: Select electrolytes suitable for temperature extremes (e.g., ionic liquids for -40 C to 85 C)
  • Lifetime Cost: Evaluate cycle life versus initial cost (e.g., EDLCs outlast batteries in cycling applications)

 

Industry Trends and Future Outlook

Emerging trends include:

  • Development of graphene-based electrodes to double energy density
  • Integration with IoT devices for smart energy management
  • Growth in automotive applications driven by EV and 48V micro-hybrid systems
  • Adoption of aqueous electrolytes for safer, low-cost energy storage
  • Hybrid supercapacitor-battery systems for renewable energy grids

The global supercapacitor market is projected to grow at 20% CAGR (2023 2030), driven by demand in transportation and renewable energy sectors.

 

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