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IRF540N MOSFET: Pinout, Equivalent, Circuit [FAQ]

  • Contents

IRF540N is an N-Channel Mosfet. This blog covers IRF540N MOSFET pinout, datasheet, equivalent, features and other information on how to use and where to use this device.

Top 5 Electronics Projects using IRF540 | irf540 top circuits

Catalog

IRF540N Pinout

IRF540N Circuit

IRF540N Applications

IRF540N Features

IRF540N Advantage

IRF540N Package

RF540N Parameters

IRF540N Manufacturer

IRF540N Documents

Where to use IRF540N

How to use IRF540N

How to Connect IRF540N

Component Datasheet

FAQ

Ordering & Quantity

IRF540N Pinout

irf540n pinout

Pin Number

Pin Name

Description

1

Source

Current flows out through Source

2

Gate

Controls the biasing of the MOSFET

3

Drain

Current flows in through Drain


IRF540N Circuit

  • IRF540N Peak Diode Recovery dv/dt Test Circuit

IRF540N Peak Diode Recovery dv/dt Test Circuit

  • IRF540N Gate Charge Test Circuit

IRF540N Gate Charge Test Circuit

  • IRF540N Unclamped Inductive Test Circuit

IRF540N Unclamped Inductive Test Circuit


IRF540N Applications

  • Switching high power devices
  • Control speed of motors
  • LED dimmers or flashers
  • High Speed switching applications
  • Converters or Inverter circuits

IRF540N Features

  • Sophisticated, cutting-edge processing technology used.
  • Extremely low resistance across load path.
  • Flexible dv/dt plot.
  • Operating temperature tolerance capacity as high as 175 degrees Celsius.
  • Fast switching capability.
  • Fully resistant against avalanche or peak surge currents.

IRF540N Advantage

irf540 mosfet

IRF540N MOSFET

The IRF540N is an advanced HEXFET N-channel power MOSFET, from International Rectifier. The device is extremely versatile with its current, voltage switching capabilities, and thus becomes ideal for numerous electronic applications.

Below we briefly introduce you several advantages of IRF540N:

  • Planar cell structure for wide SOA
  • Optimized for broadest availability from distribution partners
  • Product qualification according to JEDEC standard
  • Silicon optimized for applications switching below <100kHz
  • Industry standard through-hole power package
  • High-current carrying capability package (up to 195 A, die-size dependent)
  • Capable of being wave-soldered

IRF540N Package

  • TO-220AB Package Outline

  • TO-220AB Part Marking Information



RF540N Parameters

Additional Feature

AVALANCHE RATED, HIGH RELIABILITY

Avalanche Energy Rating (Eas)

185 mJ

Case Connection

DRAIN

Configuration

SINGLE WITH BUILT-IN DIODE

Drain Current-Max (ID)

33 A

Drain-source On Resistance-Max

0.044 Ω

DS Breakdown Voltage-Min

100 V

ECCN Code

EAR99

FET Technology

METAL-OXIDE SEMICONDUCTOR

JEDEC-95 Code

TO-220AB

JESD-30 Code

R-PSFM-T3

Manufacturer

INFINEON TECHNOLOGIES AG

Manufacturer

Infineon Technologies AG

Number of Elements

1

Number of Terminals

3

Operating Mode

ENHANCEMENT MODE

Operating Temperature-Max

175 °C

Package Body Material

PLASTIC/EPOXY

Package Description

TO-220AB, 3 PIN

Package Shape

RECTANGULAR

Package Style

FLANGE MOUNT

Part Life Cycle Code

Active

Peak Reflow Temperature (Cel)

NOT SPECIFIED

Polarity/Channel Type

N-CHANNEL

Power Dissipation Ambient-Max

94 W

Pulsed Drain Current-Max (IDM)

110 A

Qualification Status

Not Qualified

Reach Compliance Code

Compliant

Risk Rank

5.28

Rohs Code

No

Samacsys Description

MOSFET Transistor, N-Channel, TO-220AB

Surface Mount

NO

Terminal Form

THROUGH-HOLE

Terminal Position

SINGLE

Time@Peak Reflow Temperature-Max (s)

NOT SPECIFIED

Transistor Application

SWITCHING

Transistor Element Material

SILICON


IRF540N Manufacturer

Infineon Technologies AG is a German semiconductor manufacturer founded in 1999, when the semiconductor operations of the former parent company Siemens AG were spun off. Infineon has about 47,400 employees and is one of the ten largest semiconductor manufacturers worldwide. It is market leader in automotive and power semiconductors. In fiscal year 2019, the company achieved sales of €8.0 billion. Infineon bought Cypress in April 2020.


IRF540N Documents

Application Notes

MOSFET linear mode operation and SOA power MOSFETs

MOSFET some key facts about avalanche

MOSFET detailed MOSFET behavioral analysis

Product Qualification Report

IRF540N

Product Selection Guide

MOSFET OptiMOS™ and StrongIRFET™


Where to use IRF540N

The IRF540N is an N-Channel MOSFET. This mosfet can drive loads upto 23A and can support peak current upto 110A. It also has a threshold voltage of 4V, which means it can easily driven by low voltages like 5V. Hence it is mostly used with Arduino and other microcontrollers for logic switching. Speed control of motors and Light dimmers are also possible with this Mosfet since it has good switching characteristics.

So if you are looking for a Mosfet to switch applications that consume high current with some logic level devices then this Mosfet will be a perfect choice for you.


How to use IRF540N

Unlike transistors MOSFET’s are voltage controlled devices. Meaning, they can be turned on or turned off by supplying the required Gate threshold voltage (VGS). IRF540N is an N-channel MOSFET, so the Drain and Source pins will be left open when there is no voltage applied to the gate pin. When a gate voltage is applied these pins gets closed.

The below circuit shows how this mosfet behaves when the Gate voltage is applied (5V) and not applied (0V). Since this an N-Channel MOSFET the load that has to be switched (in this case a motor) should always be connected above the drain pin.

How to use IRF540N

How to use IRF540N?

When you turn on a MOSFET by supplying the required voltage to the gate pin, it will remain on unless you supply 0V to the gate. To avoid this problem we should always use a pull-down resistor (R1), here I have used a value of 10k. In applications like controlling the speed of motor or dimming a light we would use a PWM signal for fast switching, during this scenario the MOSFET’s gate capacitance will create a reverse current due to parasitic effect. To tackle this we should use a current limiting capacitor, I have a used a value of 470 here.


How to Connect IRF540N

It’s quite simple, and must be done as explained in the following points:

The source should be preferably connected to the ground or the negative line of the supply.

The drain should be connected to the positive terminal of the supply via the load which needs to be operated by the device.

Finally, the gate which is the trigger lead of the device should be connected to the trigger point of the circuit, this trigger input should be preferably a +5V supply from a CMOS logic source.

If the trigger input is not a logic source make sure the gate is permanently connected to ground via a high value resistor.

When the device is being used for switching inductive loads like a transformer or a motor, a flyback diode should be normally connected across the load, with the cathode of the diode connected to the positive side of the load.

However, the IRF540N has a built in avalanche protective diode, therefore typically an external diode may not be required; it may be incorporated in case you wish to provide extra safety to the device.

Corrections to the above explanations is welcome.


Component Datasheet

IRF540N Datasheet


FAQ

  • What is IRF540N?

The IRF540N is an advanced HEXFET N-channel power MOSFET, from International Rectifier. The device is extremely versatile with its current, voltage switching capabilities, and thus becomes ideal for numerous electronic applications.

  • Why Do We Require IRF540N?

The IRF540N is an N-Channel MOSFET. This MOSFET can drive loads upto 23A and can support peak current upto 110A. It also has a threshold voltage of 4V, which means it can easily driven by low voltages like 5V. Hence it is mostly used with Arduino and other microcontrollers for logic switching.

  • Can I Use MOSFET IRF540N as an Arduino Switch?

Arduino using MOSFET IRF540N as a switch for a motor No that makes no odds at all. The first problem is that you have not set pin 12 to be an output in the setup function. So that pin is an imput and you are just turning on and off the internal pull up resistor.

  • How Does IRF540N Work?

This section of the tutorial will elaborate about the basic working principle on which IRF540 works. IRF540 works on a simple principle. It has three kinds of terminals e.g. Drain, Gate and Source. When we apply any of the pulse at its Gate terminal, its Gate and Drain gets short i.e. they make a common connection with each other.

  • How Do You Use P Channel MOSFET?

To turn on a P-Channel Enhancement-type MOSFET, apply a positive voltage VS to the source of the MOSFET and apply a negative voltage to the gate terminal of the MOSFET (the gate must be sufficiently more negative than the threshold voltage across the drain-source region (VG DS).

 

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