ZXTN10150DZTA Allicdata Electronics
Allicdata Part #:

ZXTN10150DZTA-ND

Manufacturer Part#:

ZXTN10150DZTA

Price: $ 0.00
Product Category:

Discrete Semiconductor Products

Manufacturer: Diodes Incorporated
Short Description: TRANS NPN 150V 1A
More Detail: Bipolar (BJT) Transistor NPN 150V 1A 135MHz 1.5W S...
DataSheet: ZXTN10150DZTA datasheetZXTN10150DZTA Datasheet/PDF
Quantity: 13095
Stock 13095Can Ship Immediately
Specifications
Series: --
Packaging: Tape & Reel (TR) 
Part Status: Active
Transistor Type: NPN
Current - Collector (Ic) (Max): 1A
Voltage - Collector Emitter Breakdown (Max): 150V
Vce Saturation (Max) @ Ib, Ic: --
Current - Collector Cutoff (Max): 500nA (ICBO)
DC Current Gain (hFE) (Min) @ Ic, Vce: 100 @ 150mA, 250mV
Power - Max: 1.5W
Frequency - Transition: 135MHz
Operating Temperature: -55°C ~ 150°C (TJ)
Mounting Type: Surface Mount
Package / Case: TO-243AA
Supplier Device Package: SOT-89
Description

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The ZXTN10150DZTA is a single bipolar junction transistor (BJT). It is a type of transistor that has two p-n junctions and is used in many applications where a current needs to be controlled. It is often used as an amplifier, a switch, and a rectifier. This type of transistor is also commonly referred to as an NPN type, due to its typically arranged between an N-type semiconductor and a P-type semiconductor. This type of transistor is also referred to as a pnp because of its connection to the positive (-) and the negative (N) side of the emitter-collector circuit. The ZXTN10150DZTA is an NPN transistor designed for low-voltage and low-current applications.

This type of transistor has a maximum collector-emitter voltage of 250V and a maximum collector-emitter saturation voltage of 1.2V. It has a collector-emitter breakdown voltage of 1.8V and a collector-base breakdown voltage of 2.4V. This makes the device suitable for low voltage and low current applications with excellent thermal stability. The maximum junction temperature of the device is 150°C, which is often determined by the maximum allowable ambient temperature.

The ZXTN10150DZTA application field and working principle is based on the ability of the device to amplify or switch. This device is typically used to signal circuitry, such as digital logic circuits, oscillators, and pulse generators. This type of transistor is also used to drive small loads, such as lamps or motors. It can also be used to amplify signals, such as in amplifiers, radio receivers and transmitters, and even sonar.

The ZXTN10150DZTA works by allowing a current to pass when it is in its "on" state. This current is known as the collector current and it flows between the collector and emitter of the device. When the base voltage is low, the collector current will be very low, and the device will be turned off. When the base voltage is increased, the collector current will increase, allowing the device to be switched on.

The working of the ZXTN10150DZTA is largely dependent on the biasing. This refers to the proper base voltage that is required to switch the device on or off. If the base voltage is too low, the device will always be turned off, regardless of the current flowing through it. If the base voltage is too high, the device will always be turned on and the collector current will be greater than the current flowing through the device. Therefore, proper biasing must be determined in order to ensure that the device works as desired.

ZXTN10150DZTA transistors are also extensively used in power supply circuits. This type of transistor is often used to provide voltage regulation and power control in devices such as displays and consumer electronics. The device is also used to provide isolation in devices such as telephone lines. As such, it is essential that the proper selection of the device is take into consideration in order to ensure the device works optimally in its intended situation.

Overall, the ZXTN10150DZTA is a commonly used type of transistor due to its low voltage and low current requirements and excellent thermal stability. It is typically used to signal circuitry, provide isolation, regulate voltage, and control power. Proper biasing must be determined for the device in order to ensure that it operates as intended.

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

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