2SK3079ATE12LQ Allicdata Electronics

2SK3079ATE12LQ Discrete Semiconductor Products

Allicdata Part #:

2SK3079ATE12LQCT-ND

Manufacturer Part#:

2SK3079ATE12LQ

Price: $ 2.13
Product Category:

Discrete Semiconductor Products

Manufacturer: Toshiba Semiconductor and Storage
Short Description: MOSF RF N CH 10V PW-X
More Detail: RF Mosfet N-Channel 4.5V 50mA 470MHz 13.5dB 33.5dB...
DataSheet: 2SK3079ATE12LQ datasheet2SK3079ATE12LQ Datasheet/PDF
Quantity: 114
1 +: $ 1.93410
10 +: $ 1.74447
100 +: $ 1.40200
Stock 114Can Ship Immediately
$ 2.13
Specifications
Series: --
Packaging: Cut Tape (CT) 
Part Status: Discontinued at Digi-Key
Transistor Type: N-Channel
Frequency: 470MHz
Gain: 13.5dB
Voltage - Test: 4.5V
Current Rating: 3A
Noise Figure: --
Current - Test: 50mA
Power - Output: 33.5dBmW
Voltage - Rated: 10V
Package / Case: TO-271AA
Supplier Device Package: PW-X
Description

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The 2SK3079ATE12LQ transistor is a field-effect transistor (FET) that aims to reduce power and space requirements for wireless communications by combining two relay circuits onto one chip. With it, RF designers can benefit from reduced component sizes and higher performance without having to compromise on features like frequency range and noise levels. Therefore, it is perfect for high-frequency applications where size, weight, and power consumption need to be minimized.

By understanding the 2Sk3079ATE12LQ transistor\'s working principle and application field, engineers can better utilize them in their designs.

Working Principle

The 2SK3079ATE12LQ transistor is an enhancement-mode metal-oxide-semiconductor FET (MOSFET). This means that the current flow (i.e. the amount of electrons moving through the circuit) is controlled by a gate voltage applied to the transistor\'s gate terminal. When the gate voltage is low, no current flows through the circuit, but when the gate voltage is high, current is allowed to flow. This makes the MOSFET an ideal component for switching in a circuit.

The 2SK3079ATE12LQ transistor is composed of two independent MOSFETs on the same chip. This means that the circuit can be switched on using the first MOSFET and then off using the second one. This type of transistor is called a dual-channel transistor, as it provides two separate channels of control for the user.

Application Field

Given its dual-channel capability, the 2SK3079ATE12LQ transistor is ideal for use in high-frequency communication applications. Its low power and small size make it ideal for designing transmitters, receivers, and related systems that require high gain and low-noise performance. It can also be used in other applications that require precise switching control.

The 2SK3079ATE12LQ transistor can also be used as an amplifier, such as in audio amplifiers, phase-shift oscillators, and more. Its small size and low power requirements make it an ideal component for designing circuits with limited size and power availability.

Furthermore, the 2SK3079ATE12LQ transistor is also used in the construction of radio frequency (RF) circuits. RF engineers require precise control of power delivery and transmit power levels. The 2SK3079ATE12LQ is perfect for this application due to its high gain and low noise performance.

The 2SK3079ATE12LQ transistor can also be used to construct DC-DC converters, as its dual-channel control makes it ideal for switching applications. DC-DC converters are becoming increasingly important in today\'s electronics, due to their ability to convert an input DC voltage to a different output DC voltage, while simultaneously regulating the output.

Finally, the 2SK3079ATE12LQ transistor can also be used in voltage regulators, as its small size and low power requirements make it an ideal component for designs with limited space and power availability. Voltage regulators are used to provide a stable output voltage regardless of the input voltage, allowing for exact control of the output voltage.

Conclusion

The 2SK3079ATE12LQ transistor is a versatile component that is perfect for a variety of high frequency, low power applications. By understanding its working principle and application field, engineers can make the most of this component, and design better, smaller, and more power efficient systems.

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

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