T95Z156K025LSAL Allicdata Electronics
Allicdata Part #:

T95Z156K025LSAL-ND

Manufacturer Part#:

T95Z156K025LSAL

Price: $ 1.73
Product Category:

Capacitors

Manufacturer: Vishay Sprague
Short Description: CAP TANT 15UF 25V 10% 2910
More Detail: 15µF Conformal Coated Tantalum Capacitors 25V 2910...
DataSheet: T95Z156K025LSAL datasheetT95Z156K025LSAL Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 2A (4 Weeks)
Lead Free Status / RoHS Status: Contains lead / RoHS non-compliant
750 +: $ 1.56600
Stock 1000Can Ship Immediately
$ 1.73
Specifications
Operating Temperature: -55°C ~ 125°C
Failure Rate: --
Features: High Reliability
Ratings: COTS
Manufacturer Size Code: Z
Lead Spacing: --
Height - Seated (Max): 0.114" (2.90mm)
Size / Dimension: 0.285" L x 0.104" W (7.24mm x 2.65mm)
Package / Case: 2910 (7227 Metric)
Mounting Type: Surface Mount
Lifetime @ Temp.: --
Series: TANTAMOUNT®, T95
ESR (Equivalent Series Resistance): 600 mOhm
Type: Conformal Coated
Voltage - Rated: 25V
Tolerance: ±10%
Capacitance: 15µF
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Tape & Reel (TR) 
Description

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Tantalum Capacitors

Tantalum capacitors are an important class of electrochemical capacitors that are widely used in the electronics industry, particularly in high-frequency circuits. The T95Z156K025LSAL is a type of tantalum capacitor that has a wide range of applications in the field of electrical engineering.

Tantalum capacitors have several advantages over other types of capacitors. They are small in size, have a high capacitance-to-volume ratio, are non-polar, have low leakage current characteristics, and can operate over a wide range of temperatures and frequencies. In addition, they are very durable and reliable, making them ideal for applications where reliability is important.

Application of T95Z156K025LSAL

T95Z156K025LSAL tantalum capacitors are used in many different applications. They are commonly used in dc-dc converters, voltage reference circuits, oscillators, filters, and timing circuits. They are also used in medical equipment, communications systems, automotive electronics, and space applications. The capacitance range for these types of capacitors is typically from 0.1 to 500 microfarads.

Working Principle of T95Z156K025LSAL

Tantalum capacitors work by storing electrical energy due to the presence of a dielectric material between two electrodes. The dielectric material called tantalum pentoxide is formed when an oxygen molecule combines with a metal called tantalum. This dielectric material has a very high dielectric constant, which is why it is able to store so much energy in such a small area. When a voltage is applied to the two electrodes, a difference in potential will exist across them, and this voltage will cause the electrons to move from one electrode to the other, thus storing the energy.

When the voltage is removed, the electrons return to their original positions and the energy is released from the capacitor. This allows the current to flow through the circuit, and is known as the discharging process. Due to the high dielectric constant of the tantalum pentoxide, the capacitance value of the T95Z156K025LSAL is much higher than other capacitor types, making it ideal for many applications.

Conclusion

The T95Z156K025LSAL is a type of tantalum capacitor that has many advantages over other capacitor types. It is small in size, has a high capacitance-to-volume ratio, is non-polar, has low leakage current characteristics, and can operate over a wide range of temperatures and frequencies. In addition, it is very durable and reliable, making it ideal for applications where reliability is important. The capacitance range for this type of capacitor is typically from 0.1 to 500 microfarads, and it is used in many different types of applications.

Tantalum capacitors work by storing electrical energy due to the presence of a dielectric material between two electrodes. When a voltage is applied to the two electrodes, a difference in potential will exist across them, and this voltage will cause the electrons to move from one electrode to the other, thus storing the energy. When the voltage is removed, the electrons return to their original positions and the energy is released from the capacitor, allowing the current to flow through the circuit.

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

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