MOSFETs

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AO3401A
FUXINSEMI
350mW 12V 7.2nC@-10V 30V 65mΩ@ 10V,4.2A 4.2A 880pF@15V SOT-23
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SI2310A
FUXINSEMI
5.1nC@ 10V 92mΩ@ 4.5V,2A 3A SOT-23
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AO3400A
FUXINSEMI
1.2W 12V 1.4V 17.5nC@ 10V 30V 35mΩ@ 10V,5.8A 5.8A 630pF@15V SOT-23
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BSS138
FUXINSEMI
350mW 20V 1.5V 1.7nC@ 10V 2individualNChannel 50V 2.5kΩ@1.6V,0.34A 340mA 27pF@25V SOT-23
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FS8205A
FUXINSEMI
11nC@ 4.5V 1individualNChannel 20V 18mΩ@ 4.5V,6A 6A SOT-23-6L
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SI2301CDS
FUXINSEMI
400mW 8V 3.3nC@ 10V 1individualPChannel 20V 112mΩ@ 4.5V,2.8A 3A 500pF SOT-23
Quantity: 3000
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MOQ: 10
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FDN337N
FUXINSEMI
500mW 8V 1.3V 9nC@ 10V 30V 65mΩ@ 4.5V,2.2A 2.2A SOT-23
Quantity: 5979
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SPQ: 3000

MOSFETs

MOSFET stands for Metal-Oxide-Semiconductor Field-Effect Transistor. It is a type of transistor used for amplifying or switching electronic signals and electrical power. Here's a concise introduction in English:

Definition:
A MOSFET is a voltage-controlled device that uses a gate voltage to control the flow of current between its source and drain terminals. It consists of a metal gate electrode, an oxide insulator, and a semiconductor channel, typically made of silicon.

Function:
The primary function of a MOSFET is to act as a switch or an amplifier. When a voltage is applied to the gate, it creates an electric field that either allows or inhibits current flow between the source and drain. This makes MOSFETs ideal for digital and analog circuits, where precise control over current is required.

Applications:
MOSFETs are widely used in various electronic devices due to their versatility and efficiency. Some common applications include:
1. Power electronics for motor control and power supply regulation.
2. Digital electronics for logic gates and memory circuits.
3. Analog circuits for signal amplification and processing.
4. Automotive electronics for engine management and safety systems.

Selection Criteria:
When selecting a MOSFET, consider the following criteria:
1. Voltage Rating: Ensure the MOSFET can handle the maximum voltage of the circuit.
2. Current Rating: Choose a MOSFET that can handle the expected current load.
3. Power Dissipation: Consider the heat generated and ensure the MOSFET can dissipate it effectively.
4. Switching Speed: For high-speed applications, select a MOSFET with fast switching characteristics.
5. Gate Threshold Voltage: This determines the minimum voltage required to turn the MOSFET on.
6. Package Type: Choose a package that suits the physical constraints of the application.
7. Cost: Balance performance with cost, considering the budget and availability.

In summary, MOSFETs are essential components in modern electronics, offering precise control over current flow and enabling a wide range of applications from simple switches to complex integrated circuits.
Please refer to the product rule book for details.