199D107X0010E6B1E3 Allicdata Electronics
Allicdata Part #:

199D107X0010E6B1E3-ND

Manufacturer Part#:

199D107X0010E6B1E3

Price: $ 1.13
Product Category:

Capacitors

Manufacturer: Vishay Sprague
Short Description: CAP TANT 100UF 10V 20% RADIAL
More Detail: 100µF Conformal Coated Tantalum Capacitors 10V Rad...
DataSheet: 199D107X0010E6B1E3 datasheet199D107X0010E6B1E3 Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
500 +: $ 1.02532
Stock 1000Can Ship Immediately
$ 1.13
Specifications
Operating Temperature: -55°C ~ 125°C
Failure Rate: --
Features: General Purpose
Manufacturer Size Code: E
Lead Spacing: 0.200" (5.08mm)
Height - Seated (Max): 0.591" (15.00mm)
Size / Dimension: 0.339" Dia (8.60mm)
Package / Case: Radial
Mounting Type: Through Hole
Lifetime @ Temp.: 1000 Hrs @ 85°C
Series: TANTALEX®, 199D
ESR (Equivalent Series Resistance): --
Type: Conformal Coated
Voltage - Rated: 10V
Tolerance: ±20%
Capacitance: 100µF
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Tape & Reel (TR) 
Description

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Tantalum capacitors are a type of electrolytic capacitor, a component of electronic circuits. They are constructed of two concentrating metallic plates coated in a dielectric layer, which is then enclosed by a container. The ‘anode plate’ is composed of tantalum, hence the name of the capacitor. A wet electrolyte is contained in the capacitor, containing a mixture of organic solvent and acid. The electrochemical action between the anode and the electrolyte results in a generating anizable oxide on the surface of the anode. The oxide layer serves as a dielectric which stores electrical energy.

The 9D107X0010E6B1E3 is an example of a type of tantalum capacitor, specifically an axial leaded, non-polarized enclosure, with a capacitance of 10 μF and a working voltage of 25V. The capacitor is composed of a solid tantalum and manganese dioxide electrolyte with a conductive casing. The maximum leakage current is 0.20 μA, with a capacitance tolerance of ±20%.

The 9D107X0010E6B1E3 is typically used for decoupling of power supplies, as a bypass capacitor, and for filter applications. As such they are most beneficial for decoupling power supply noise, since they have well regulated low-loss inductors and an enviable capacitance-to-volume ratio. When used as a bypass capacitor, the 9D107X0010E6B1E3 can provide a relatively large amount of capacitance in a small package. A typical filter application for this type of capacitor is in power supplies, providing stability and ripple performance in the filter circuit.

When used as a decoupling capacitor, the 9D107X0010E6B1E3 has a low self-inductance, meaning that it can be used to suppress voltage spikes in power supplies, as well as to reduce motor ripple. This type of capacitor can be very helpful in preserving the integrity of power supplies, as they can absorb any excess voltage created in the system. They also work to reduce motor ripple, which can increase the efficiency of motor control circuits. The low self-inductance also works to reduce potential noise and minimize signal errors.

In terms of its working principle, the 9D107X0010E6B1E3 capacitor works by storing electrical charge brought about by the reaction between the electrolyte and the tantalum. When the capacitor is used as a decoupling device, the charge is stored in the oxide layer of the capacitor plates. When energy is required or the line is interrupted, this charge is then supplied to the source. When the high-frequency energy is dissipated, the capacitor reacts to help sustain the flow of power and reduce the voltage. In filter circuits, the 9D107X0010E6B1E3 capacitor works by filtering out any unwanted frequencies from the power supply.

In summary, the 9D107X0010E6B1E3 is a type of tantalum capacitor best used for decoupling power supplies, as a bypass capacitor, and for filter applications. Its capacitance tolerance and leakage current are quite acceptable for the majority of power supply and filtering applications, and its low self-inductance ensures that it will perform efficiently with minimal noise and minimal signal errors. As such, it is an ideal component for a variety of electronic applications.

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

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