T541X337M016BT8720 Allicdata Electronics
Allicdata Part #:

T541X337M016BT8720-ND

Manufacturer Part#:

T541X337M016BT8720

Price: $ 8.75
Product Category:

Capacitors

Manufacturer: KEMET
Short Description: CAP TAN POLYMER COTS SMD 330UF 2
More Detail: 330µF Molded Tantalum Polymer Capacitor 16V 2917 (...
DataSheet: T541X337M016BT8720 datasheetT541X337M016BT8720 Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 3 (168 Hours)
Lead Free Status / RoHS Status: Contains lead / RoHS non-compliant
500 +: $ 7.95235
Stock 1000Can Ship Immediately
$ 8.75
Specifications
Operating Temperature: -55°C ~ 125°C
Features: High Reliability
Ratings: COTS
Manufacturer Size Code: X
Lead Spacing: --
Height - Seated (Max): 0.169" (4.30mm)
Size / Dimension: 0.287" L x 0.169" W (7.30mm x 4.30mm)
Package / Case: 2917 (7343 Metric)
Mounting Type: Surface Mount
Lifetime @ Temp.: 2000 Hrs @ 125°C
Series: KO-CAP® T541
ESR (Equivalent Series Resistance): 25 mOhm @ 100kHz
Type: Molded
Voltage - Rated: 16V
Tolerance: ±20%
Moisture Sensitivity Level (MSL): --
Capacitance: 330µF
Lead Free Status / RoHS Status: --
Part Status: Active
Description

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T541X337M016BT8720 is one of the most widely used types of capacitors in the field of tantalum-polymer capacitors. It has a variety of applications, from consumer electronics to automotive and medical applications. This type of capacitor consists of two electrodes: one is made of a conductive polymer and the other is a sheet of tantalum. The sheet of tantalum is electrolytically plated with a thin layer of oxide. The oxide acts as a kind of electrical insulator, allowing the electrodes to remain isolated from each other. This type of capacitor is known for its low ESR (Equivalent Series Resistance) and its high temperature and humidity tolerance, making it suitable for many different applications.

The T541X337M016BT8720 tantalum-polymer capacitor has several advantages over other types of capacitors. It has a very high capacitance density, which means that it is able to store more energy in a small area. It also has very low leakage current, meaning that it can maintain its high capacitance values over a long period of time. It is also very stable, with a low drift rate over temperatures and a low self-heating rate. This makes it ideal for applications where an extremely stable voltage is required.

The working principle of the T541X337M016BT8720 capacitor is relatively simple. The capacitance of the capacitor comes from the two electrodes: the conductive polymer and the tantalum sheet. The two electrodes are separated by a thin layer of oxide, which acts as an electrical insulator. When an electric potential is applied to the two electrodes, the oxide layer allows for charge to flow between the two, creating an electric field. This electric field causes the charges to accumulate on the two electrodes, resulting in an increase in the capacitance of the capacitor.

The T541X337M016BT8720 capacitor is mostly used in consumer electronics, where its high capacitance density and low leakage current make it ideal for applications such as power supplies and DC-DC converters. It is also found in automotive applications, specifically those involving the ignition system, where its stable voltage and low self-heating rate help ensure safety and reliable operation. The T541X337M016BT8720 is also commonly used in medical and aerospace applications, due to its high temperature and humidity tolerance.

In conclusion, the T541X337M016BT8720 tantalum-polymer capacitor is one of the most widely used types of capacitors in the field of tantalum-polymer capacitors. It has a variety of applications, ranging from consumer electronics to automotive and medical applications. It has a high capacitance density, low leakage current, stable voltage, and high temperature and humidity tolerance, making it suitable for many different applications. The working principle of the T541X337M016BT8720 is relatively straightforward, with two electrodes separated by a thin layer of oxide, allowing for charge to flow between the two, creating an electric field and resulting in an increase in the capacitance of the capacitor.

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

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