PMPB15XPZ Allicdata Electronics
Allicdata Part #:

PMPB15XPZ-ND

Manufacturer Part#:

PMPB15XPZ

Price: $ 0.11
Product Category:

Discrete Semiconductor Products

Manufacturer: Nexperia USA Inc.
Short Description: MOSFET P-CH 12V SOT1220
More Detail: P-Channel 12V 8.2A (Ta) 1.7W (Ta), 12.5W (Tc) Surf...
DataSheet: PMPB15XPZ datasheetPMPB15XPZ Datasheet/PDF
Quantity: 1000
3000 +: $ 0.09731
Stock 1000Can Ship Immediately
$ 0.11
Specifications
Vgs(th) (Max) @ Id: 900mV @ 250µA
Package / Case: 6-UDFN Exposed Pad
Supplier Device Package: DFN2020MD-6
Mounting Type: Surface Mount
Operating Temperature: -55°C ~ 150°C (TJ)
Power Dissipation (Max): 1.7W (Ta), 12.5W (Tc)
FET Feature: --
Input Capacitance (Ciss) (Max) @ Vds: 2875pF @ 6V
Vgs (Max): ±12V
Gate Charge (Qg) (Max) @ Vgs: 100nC @ 4.5V
Series: --
Rds On (Max) @ Id, Vgs: 19 mOhm @ 8.2A, 4.5V
Drive Voltage (Max Rds On, Min Rds On): 1.8V, 4.5V
Current - Continuous Drain (Id) @ 25°C: 8.2A (Ta)
Drain to Source Voltage (Vdss): 12V
Technology: MOSFET (Metal Oxide)
FET Type: P-Channel
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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PMPB15XPZ is a type of field effect transistor (FET) that is used in many different kinds of applications. A FET is a type of transistor that is based around the principle of controlling electrical current by applying an electric field. The PMPB15XPZ is a single-gate FET, which means that it consists of a single conducting channel connected between two terminals. The two terminals are called the source and the drain, and the channel of the FET is located between them. The main advantage of using a single-gate FET is that it is much easier to control the current than with other types of transistors, as it can be controlled with a single control voltage or current.

The PMPB15XPZ is designed to be a low-power device, making it especially suitable for applications where power consumption is of primary concern. This makes it ideal for use in motor controls, sensors and other low-power electronics. In motor control applications, the PMPB15XPZ can be used to control the speed of the motor by supplying a variable voltage or current to the gate of the FET.

The PMPB15XPZ is also well-suited to digital logic application. As a logic circuit element, it can be used to control the voltage between the source and the drain. By applying a small voltage to the gate terminal, the current between the source and the drain can be precisely controlled. This makes it ideal for use as a switch or a memory element.

The working principle of the PMPB15XPZ is based on the idea that an electric field can be used to control current in a conductor. When a voltage is applied to the gate of the transistor, the electric field generated by it extends into the semiconductor channel connected between the source and the drain. This causes the amount of current that can be conducted between the source and the drain to be precisely controlled.

When the FET is connected to a circuit, the voltage applied to the gate of the transistor determines the voltage that is present between the source and the drain. If the voltage applied to the gate is higher than the voltage between the source and the drain, current will flow from the drain to the source. Conversely, if the voltage applied to the gate is lower than the voltage between the source and the drain, current will flow from the source to the drain.

The PMPB15XPZ can also be used in analog circuits as an amplifier. This is because it can control the current between the source and the drain in response to changes in the voltage applied to the gate. This allows the FET to be used to amplify small voltage signals, which can then be used to control other devices or systems.

In summary, the PMPB15XPZ is a single-gate FET that is used in many different applications. It is well-suited to low-power applications such as motor control and digital logic. It works on the principle of controlling the current between the source and the drain by applying a voltage to the gate. It can also be used in analog circuits as an amplifier to amplify small voltage signals.

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

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