STFU16N65M2 Allicdata Electronics
Allicdata Part #:

STFU16N65M2-ND

Manufacturer Part#:

STFU16N65M2

Price: $ 0.92
Product Category:

Discrete Semiconductor Products

Manufacturer: STMicroelectronics
Short Description: MOSFET
More Detail: N-Channel 650V 11A (Tc) 25W (Tc) Through Hole TO-2...
DataSheet: STFU16N65M2 datasheetSTFU16N65M2 Datasheet/PDF
Quantity: 1000
1000 +: $ 0.84042
Stock 1000Can Ship Immediately
$ 0.92
Specifications
Gate Charge (Qg) (Max) @ Vgs: 19.5nC @ 10V
Package / Case: TO-220-3 Full Pack
Supplier Device Package: TO-220FP
Mounting Type: Through Hole
Operating Temperature: -55°C ~ 150°C (TJ)
Power Dissipation (Max): 25W (Tc)
FET Feature: --
Input Capacitance (Ciss) (Max) @ Vds: 718pF @ 100V
Vgs (Max): ±25V
Series: MDmesh™ M2
Vgs(th) (Max) @ Id: 4V @ 250µA
Rds On (Max) @ Id, Vgs: 360 mOhm @ 5.5A, 10V
Drive Voltage (Max Rds On, Min Rds On): 10V
Current - Continuous Drain (Id) @ 25°C: 11A (Tc)
Drain to Source Voltage (Vdss): 650V
Technology: MOSFET (Metal Oxide)
FET Type: N-Channel
Part Status: Active
Description

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The STFU16N65M2 application field and working principle are of great importance to any transistor user. It is often used to drive low voltage power switches, amplifying low voltage signals for high current applications, and for noise and gain control. The STFU16N65M2 is a single N-Channel Enhancement Mode MOSFET (metal-oxide-semiconductor field-effect transistor). It is fabricated using advanced planar technology that offers low on-resistance and fast switching.

The STFU16N65M2 has two main components; the gate and drain. The gate provides the main switch function and is used to control the flow of current from the source to the drain. The drain is used to receive or transmit current. The source acts as a connection between the device and the source external circuitry.

One of the main benefits of the STFU16N65M2 is its low power consumption. It is capable of operating at very low voltage, which makes the device more efficient than other MOSFETs. Additionally, the device can be used in high temperature environments, as its on-resistance is not affected by temperature variations. It is also capable to selectively turn on and off power to the circuits.

The STFU16N65M2 working principle is relatively simple; current is initiated by applying a voltage to the gate of the device. The current flow will increase proportional to the applied voltage from the gate. As the applied voltage is increased, the resistance between the source and drain decreases and the current flow increases. By controlling the gate voltage, the user can control the amount of current flowing through the device.

The STFU16N65M2 is used in a variety of applications for its speed, low power consumption, and high accuracy. It is often used as a low voltage power switch. It is also used to amplify low voltage signals for high current applications. Its noise immunity, bandwidth and fast response make it suitable for gain control as well.

The STFU16N65M2 application field and working principle is well-suited for many applications. It is often used in voltage regulation, motor control and even energy harvesting applications. Its low power consumption makes it well suited for applications where low power consumption is critical. Additionally, its low on-resistance and fast switching make it an ideal choice for low voltage power applications. It is also used as a low voltage power switch, as well as an amplifier for low voltage signals.

While the STFU16N65M2 offers many benefits, keep in mind that it has its own limitations. The device is designed for use in low voltage applications and its power handling capability is limited. It is also not suitable for use in applications that require large amounts of current. With proper selection and implementation, it can be a useful tool for controlling current flow.

The STFU16N65M2 application field and working principle are very important factors to consider when selecting the best MOSFET for your application. Its low power consumption, fast switching, and low on-resistance make it well suited for many low voltage applications. When considering the device for your application, be sure to understand its limitations and make sure you have the necessary circuitry and components to properly implement it. This will help ensure that you get the most out of your device and get the best performance.

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

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