MAL219691131E3 Allicdata Electronics
Allicdata Part #:

4696PHBK-ND

Manufacturer Part#:

MAL219691131E3

Price: $ 2.14
Product Category:

Capacitors

Manufacturer: Vishay BC Components
Short Description: CAP 4F -20% +80% 1.4V SMD
More Detail: 4F (EDLC) Supercapacitor 1.4V Coin, Wide Terminals...
DataSheet: MAL219691131E3 datasheetMAL219691131E3 Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
1 +: $ 1.93950
10 +: $ 1.74555
100 +: $ 1.31895
500 +: $ 1.08618
1000 +: $ 1.00860
2500 +: $ 1.00490
Stock 1000Can Ship Immediately
$ 2.14
Specifications
ESR (Equivalent Series Resistance): 2.5 Ohm @ 1kHz
Operating Temperature: -20°C ~ 70°C
Height - Seated (Max): 0.138" (3.50mm)
Size / Dimension: 0.276" L x 0.276" W (7.00mm x 7.00mm)
Lead Spacing: --
Package / Case: Coin, Wide Terminals - Opposite Sides
Mounting Type: Surface Mount
Termination: SMD (SMT) Tabs
Lifetime @ Temp.: 1000 Hrs @ 85°C
Series: ENYCAP™ 196HVC
Voltage - Rated: 1.4V
Tolerance: -20%, +80%
Capacitance: 4F
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Tray 
Description

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Electric double layer capacitors, or EDLCs, are a type of electrochemical capacitor that is used in a wide range of applications. They are also known as supercapacitors due to their ability to store a large amount of energy at a much faster rate than traditional capacitors. The MAL219691131E3 is a type of EDLC, and this article will discuss its application field and working principle.

Application Field of the MAL219691131E3

The MAL219691131E3 is a type of electrode surface, and it is specifically designed for use in supercapacitors of any form. It can be used in most types of EDLCs, including asymmetric, symmetric, and zeolite-based capacitors. The MAL219691131E3 has a two-layer structure, and its electrode surface is made of two layers of highly conductive materials. The upper layer is made of graphene nanoplatelets, and the bottom layer is made of an activated carbon fiber cloth. This combination of materials gives the MAL219691131E3 its unique characteristics, which make it suitable for a wide range of applications.

The MAL219691131E3 is ideal for applications that require high power density and high capacitance. It is often used in high-power electrical circuits, such as solar energy harvesting systems, or electrical energy storage systems. It is also suitable for short-term energy storage, such as electric vehicles or aircraft. Additionally, it can be used as an energy buffer for power supplies of electrical equipment, such as data centers, medical devices, and smartphones.

Working Principle of the MAL219691131E3

The MAL219691131E3 is a type of EDLC, and its working principle is based on the double layer electrode concept. This concept states that a thin film of electrolyte is sandwiched between two electrodes. When a potential difference is applied, charges are stored in the form of an electric double layer. This double layer is formed by two types of charges, ions and polar molecules, which are held together by electrostatic forces.

In the case of the MAL219691131E3, the two layers of electrodes form an electric double layer capacitance. The graphene nanoplatelets form the upper layer, while the activated carbon fiber cloth forms the bottom layer. When a potential difference is applied to the two layers, charges are attracted to and stored in the electric double layer. The result is a large energy storage capacity and high power density.

Conclusion

The MAL219691131E3 is a type of EDLC that is used in a variety of applications. It has a two-layer electrode structure, which makes it suitable for high-power electrical circuits. Additionally, it has a large energy storage capacity and high power density, which makes it an ideal choice for applications requiring short-term energy storage. The working principle of the MAL219691131E3 is based on the double layer electrode concept, which states that electric double layers are formed when a potential difference is applied between two layers of electrodes.

The specific data is subject to PDF, and the above content is for reference

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