BZ013A144ZSB Allicdata Electronics
Allicdata Part #:

478-6263-ND

Manufacturer Part#:

BZ013A144ZSB

Price: $ 7.95
Product Category:

Capacitors

Manufacturer: AVX Corporation
Short Description: CAP 140MF -20% +80% 3.6V SMD
More Detail: 140mF (EDLC) Supercapacitor 3.6V BZ01, 3 Lead 70 m...
DataSheet: BZ013A144ZSB datasheetBZ013A144ZSB Datasheet/PDF
Quantity: 103
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
1 +: $ 7.22700
10 +: $ 6.86565
100 +: $ 5.42025
Stock 103Can Ship Immediately
$ 7.95
Specifications
Series: BestCap® BZ
Packaging: Bulk 
Lead Free Status / RoHS Status: --
Part Status: Active
Moisture Sensitivity Level (MSL): --
Capacitance: 140mF
Tolerance: -20%, +80%
Voltage - Rated: 3.6V
ESR (Equivalent Series Resistance): 70 mOhm
Lifetime @ Temp.: 1000 Hrs @ 70°C
Termination: SMD (SMT) Tabs
Mounting Type: Surface Mount
Package / Case: BZ01, 3 Lead
Lead Spacing: --
Size / Dimension: 1.102" L x 0.669" W (28.00mm x 17.00mm)
Height - Seated (Max): 0.228" (5.80mm)
Operating Temperature: -20°C ~ 70°C
Description

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Electric double layer capacitors (EDLC), also known as supercapacitors, are increasingly becoming popular in research and development in the engineering and industrial fields due to their capacity to store and deliver a substantial amount of electrical energy with very low cost and energy efficiency. The BZ013A144ZSB is one such product that is being used extensively in these fields.

The BZ013A144ZSB supercapacitor is widely employed in many applications that require reliable, safe and highly linear performance. It contains a double layer of carbon electrodes with electrolyte as an active medium, providing high capacitance with very low equivalent series resistance (ESR) and low leakage current. Its low ESR capability enables the BZ013A144ZSB to produce minimum interruptions to the load current during start up and stop operations.

The BZ013A144ZSB is capable of delivering a great deal of power and has exhibited superior performance, even in extreme temperature conditions. It is also capable of fast charging and discharging due to its higher power density. It can achieve sudden power needs, and its capacity is also not affected when it is fully charged. The BZ013A144ZSB is very reliable and high in energy density, providing for long-term energy storage.

The working principle or the actual operation of the supercapacitor is quite complex. It involves a physical process called electrochemical double layer formation between the two electrodes and the electrolyte in the device, which can be established in two separate layers. This enables the supercapacitor to store an enormous amount of electrical energy. When a voltage is applied to the supercapacitor, the electrons become polarized, enabling the electrons to move around and accumulate on the electrode surface.

The electric field strength between the two electrodes determines the flow of electrons. This same electric field also helps to attract the ions in the electrolyte towards the electrodes, resulting in a double layer of charge on both the electrodes. The ions and electrons are now effectively trapped in the electrochemical double layer, resulting in the storage of electrical energy. This electrical energy is released from the electro-chemical double layer when a current is drawn from the device through the process of electron redistribution.

The application fields of the BZ013A144ZSB are varied, ranging from consumer electronics, such as mobile phones and digital cameras to automobiles, motorcycles, solar cells, communication devices, medical equipment, and much more. It is increasingly being used for high-power charging and discharging in these fields due to its capability to store and deliver large amounts of energy quickly and efficiently.

The EDLC supercapacitor BZ013A144ZSB is a highly efficient, reliable and robust energy storage solution. Its high performance and low cost are the driving force behind its increasing popularity in various engineering and industrial applications. Its superior performance in extreme temperatures, continual charging and discharging and high energy density make it an ideal choice for various energy storage needs. Although the actual working principle is complex, it is a highly efficient technology that can be used for a host of different applications.

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

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