IRF4905 P-Channel MOSFET: Datasheet pdf, Pinout and Equivalents

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Published: 13 December 2021 | Last Updated: 13 December 2021

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IRF4905PBF

IRF4905PBF

Infineon Technologies

P-Channel Tube 20m Ω @ 38A, 10V ±20V 3400pF @ 25V 180nC @ 10V 55V TO-220-3

Purchase Guide

P-Channel Tube 20m Ω @ 38A, 10V ±20V 3400pF @ 25V 180nC @ 10V 55V TO-220-3

IRF4905 is a P-Channel HEXFET Power MOSFET available in a TO-220AB package and is based on Advanced Process Technology. This article is going to introduce pinout, datasheet, circuit, features, and other details about IRF4905 P-Channel MOSFET.

This video demonstrates IRF4905 p-channel MOSFET.

Relay Mosfet 3V-27V 30A Ide Kreatif DIY Relay mosfet 12V

Introduction to IRF4905

IRF4905 is a P-Channel HEXFET Power MOSFET with Advanced Process Technology that comes in a TO-220AB package. It is primarily utilized for quick switching and has an extremely low on-resistance.


IRF4905 Pinout

This tiny device comes with three terminals called the gate, drain, and source where the gate terminal is used to control the current on the remaining two terminals. The area between source and drain is known as a channel that is widely dependent on the voltage applied to the gate terminal.

irf4905 pinout.jpg

IRF4905 Pinout

Pin No.Pin NameSymbolFunction
1GateGControl the current   in the channel between drain and source
2DrainDEmit several holes
3SourceSCollect some holes


IRF4905 CAD Model

irf4905 symbol.jpg

IRF4905 Symbol

irf4905 footprint.jpg

IRF4905 Footprint

irf4905 3d model.jpg

IRF4905 3D Model




Specifications

Infineon Technologies IRF4905PBF technical specifications, attributes, parameters and parts with similar specifications to Infineon Technologies IRF4905PBF.
  • Type
    Parameter
  • Factory Lead Time
    12 Weeks
  • Mount

    In electronic components, the term "Mount" typically refers to the method or process of physically attaching or fixing a component onto a circuit board or other electronic device. This can involve soldering, adhesive bonding, or other techniques to secure the component in place. The mounting process is crucial for ensuring proper electrical connections and mechanical stability within the electronic system. Different components may have specific mounting requirements based on their size, shape, and function, and manufacturers provide guidelines for proper mounting procedures to ensure optimal performance and reliability of the electronic device.

    Through Hole
  • Mounting Type

    The "Mounting Type" in electronic components refers to the method used to attach or connect a component to a circuit board or other substrate, such as through-hole, surface-mount, or panel mount.

    Through Hole
  • Package / Case

    refers to the protective housing that encases an electronic component, providing mechanical support, electrical connections, and thermal management.

    TO-220-3
  • Number of Pins
    3
  • Transistor Element Material

    The "Transistor Element Material" parameter in electronic components refers to the material used to construct the transistor within the component. Transistors are semiconductor devices that amplify or switch electronic signals and are a fundamental building block in electronic circuits. The material used for the transistor element can significantly impact the performance and characteristics of the component. Common materials used for transistor elements include silicon, germanium, and gallium arsenide, each with its own unique properties and suitability for different applications. The choice of transistor element material is crucial in designing electronic components to meet specific performance requirements such as speed, power efficiency, and temperature tolerance.

    SILICON
  • Current - Continuous Drain (Id) @ 25℃
    74A Tc
  • Drive Voltage (Max Rds On, Min Rds On)
    10V
  • Number of Elements
    1
  • Power Dissipation (Max)
    200W Tc
  • Turn Off Delay Time

    It is the time from when Vgs drops below 90% of the gate drive voltage to when the drain current drops below 90% of the load current. It is the delay before current starts to transition in the load, and depends on Rg. Ciss.

    61 ns
  • Operating Temperature

    The operating temperature is the range of ambient temperature within which a power supply, or any other electrical equipment, operate in. This ranges from a minimum operating temperature, to a peak or maximum operating temperature, outside which, the power supply may fail.

    -55°C~175°C TJ
  • Packaging

    Semiconductor package is a carrier / shell used to contain and cover one or more semiconductor components or integrated circuits. The material of the shell can be metal, plastic, glass or ceramic.

    Tube
  • Series

    In electronic components, the "Series" refers to a group of products that share similar characteristics, designs, or functionalities, often produced by the same manufacturer. These components within a series typically have common specifications but may vary in terms of voltage, power, or packaging to meet different application needs. The series name helps identify and differentiate between various product lines within a manufacturer's catalog.

    HEXFET®
  • Published
    1997
  • JESD-609 Code

    The "JESD-609 Code" in electronic components refers to a standardized marking code that indicates the lead-free solder composition and finish of electronic components for compliance with environmental regulations.

    e3
  • Part Status

    Parts can have many statuses as they progress through the configuration, analysis, review, and approval stages.

    Active
  • Moisture Sensitivity Level (MSL)

    Moisture Sensitivity Level (MSL) is a standardized rating that indicates the susceptibility of electronic components, particularly semiconductors, to moisture-induced damage during storage and the soldering process, defining the allowable exposure time to ambient conditions before they require special handling or baking to prevent failures

    1 (Unlimited)
  • Number of Terminations
    3
  • Termination

    Termination in electronic components refers to the practice of matching the impedance of a circuit to prevent signal reflections and ensure maximum power transfer. It involves the use of resistors or other components at the end of transmission lines or connections. Proper termination is crucial in high-frequency applications to maintain signal integrity and reduce noise.

    Through Hole
  • ECCN Code

    An ECCN (Export Control Classification Number) is an alphanumeric code used by the U.S. Bureau of Industry and Security to identify and categorize electronic components and other dual-use items that may require an export license based on their technical characteristics and potential for military use.

    EAR99
  • Terminal Finish

    Terminal Finish refers to the surface treatment applied to the terminals or leads of electronic components to enhance their performance and longevity. It can improve solderability, corrosion resistance, and overall reliability of the connection in electronic assemblies. Common finishes include nickel, gold, and tin, each possessing distinct properties suitable for various applications. The choice of terminal finish can significantly impact the durability and effectiveness of electronic devices.

    Matte Tin (Sn) - with Nickel (Ni) barrier
  • Additional Feature

    Any Feature, including a modified Existing Feature, that is not an Existing Feature.

    AVALANCHE RATED, HIGH RELIABILITY, ULTRA-LOW RESISTANCE
  • Voltage - Rated DC

    Voltage - Rated DC is a parameter that specifies the maximum direct current (DC) voltage that an electronic component can safely handle without being damaged. This rating is crucial for ensuring the proper functioning and longevity of the component in a circuit. Exceeding the rated DC voltage can lead to overheating, breakdown, or even permanent damage to the component. It is important to carefully consider this parameter when designing or selecting components for a circuit to prevent any potential issues related to voltage overload.

    -55V
  • Peak Reflow Temperature (Cel)

    Peak Reflow Temperature (Cel) is a parameter that specifies the maximum temperature at which an electronic component can be exposed during the reflow soldering process. Reflow soldering is a common method used to attach electronic components to a circuit board. The Peak Reflow Temperature is crucial because it ensures that the component is not damaged or degraded during the soldering process. Exceeding the specified Peak Reflow Temperature can lead to issues such as component failure, reduced performance, or even permanent damage to the component. It is important for manufacturers and assemblers to adhere to the recommended Peak Reflow Temperature to ensure the reliability and functionality of the electronic components.

    250
  • Current Rating

    Current rating is the maximum current that a fuse will carry for an indefinite period without too much deterioration of the fuse element.

    -74A
  • Time@Peak Reflow Temperature-Max (s)

    Time@Peak Reflow Temperature-Max (s) refers to the maximum duration that an electronic component can be exposed to the peak reflow temperature during the soldering process, which is crucial for ensuring reliable solder joint formation without damaging the component.

    30
  • Lead Pitch

    Lead pitch in electronic components refers to the distance between the center of one lead (or pin) of a component to the center of the adjacent lead. It is an important parameter to consider when designing and assembling electronic circuits, as it determines the spacing required on a circuit board for proper placement and soldering of the component. Lead pitch is typically specified in millimeters or inches and can vary depending on the type of component, such as integrated circuits, resistors, capacitors, and connectors. Choosing the correct lead pitch ensures proper alignment and connection of components on a circuit board, ultimately affecting the functionality and reliability of the electronic device.

    2.54mm
  • Number of Channels
    1
  • Element Configuration

    The distribution of electrons of an atom or molecule (or other physical structure) in atomic or molecular orbitals.

    Single
  • Operating Mode

    A phase of operation during the operation and maintenance stages of the life cycle of a facility.

    ENHANCEMENT MODE
  • Power Dissipation

    the process by which an electronic or electrical device produces heat (energy loss or waste) as an undesirable derivative of its primary action.

    200W
  • Case Connection

    Case Connection refers to the method by which an electronic component's case or housing is connected to the electrical circuit. This connection is important for grounding purposes, mechanical stability, and heat dissipation. The case connection can vary depending on the type of component and its intended application. It is crucial to ensure a secure and reliable case connection to maintain the overall performance and safety of the electronic device.

    DRAIN
  • Turn On Delay Time

    Turn-on delay, td(on), is the time taken to charge the input capacitance of the device before drain current conduction can start.

    18 ns
  • FET Type

    "FET Type" refers to the type of Field-Effect Transistor (FET) being used in an electronic component. FETs are three-terminal semiconductor devices that can be classified into different types based on their construction and operation. The main types of FETs include Metal-Oxide-Semiconductor FETs (MOSFETs), Junction FETs (JFETs), and Insulated-Gate Bipolar Transistors (IGBTs).Each type of FET has its own unique characteristics and applications. MOSFETs are commonly used in digital circuits due to their high input impedance and low power consumption. JFETs are often used in low-noise amplifiers and switching circuits. IGBTs combine the high input impedance of MOSFETs with the high current-carrying capability of bipolar transistors, making them suitable for high-power applications like motor control and power inverters.When selecting an electronic component, understanding the FET type is crucial as it determines the device's performance and suitability for a specific application. It is important to consider factors such as voltage ratings, current handling capabilities, switching speeds, and power dissipation when choosing the right FET type for a particular circuit design.

    P-Channel
  • Transistor Application

    In the context of electronic components, the parameter "Transistor Application" refers to the specific purpose or function for which a transistor is designed and used. Transistors are semiconductor devices that can amplify or switch electronic signals and are commonly used in various electronic circuits. The application of a transistor can vary widely depending on its design and characteristics, such as whether it is intended for audio amplification, digital logic, power control, or radio frequency applications. Understanding the transistor application is important for selecting the right type of transistor for a particular circuit or system to ensure optimal performance and functionality.

    SWITCHING
  • Rds On (Max) @ Id, Vgs

    Rds On (Max) @ Id, Vgs refers to the maximum on-resistance of a MOSFET or similar transistor when it is fully turned on or in the saturation region. It is specified at a given drain current (Id) and gate-source voltage (Vgs). This parameter indicates how much resistance the component will offer when conducting, impacting power loss and efficiency in a circuit. Lower Rds On values are preferred for better performance in switching applications.

    20m Ω @ 38A, 10V
  • Vgs(th) (Max) @ Id

    The parameter "Vgs(th) (Max) @ Id" in electronic components refers to the maximum gate-source threshold voltage at a specified drain current (Id). This parameter is commonly found in field-effect transistors (FETs) and is used to define the minimum voltage required at the gate terminal to turn on the transistor and allow current to flow from the drain to the source. The maximum value indicates the upper limit of this threshold voltage under specified operating conditions. It is an important parameter for determining the proper biasing and operating conditions of the FET in a circuit to ensure proper functionality and performance.

    4V @ 250μA
  • Input Capacitance (Ciss) (Max) @ Vds

    The parameter "Input Capacitance (Ciss) (Max) @ Vds" in electronic components refers to the maximum input capacitance measured at a specific drain-source voltage (Vds). Input capacitance is a crucial parameter in field-effect transistors (FETs) and power MOSFETs, as it represents the total capacitance at the input terminal of the device. This capacitance affects the device's switching speed and overall performance, as it influences the time required for charging and discharging during operation. Manufacturers provide this parameter to help designers understand the device's input characteristics and make informed decisions when integrating it into a circuit.

    3400pF @ 25V
  • Gate Charge (Qg) (Max) @ Vgs

    Gate Charge (Qg) (Max) @ Vgs refers to the maximum amount of charge that must be supplied to the gate of a MOSFET or similar device to fully turn it on, measured at a specific gate-source voltage (Vgs). This parameter is crucial for understanding the switching characteristics of the device, as it influences the speed at which the gate can charge and discharge. A higher gate charge value often implies slower switching speeds, which can impact the efficiency of high-frequency applications. This parameter is typically specified in nanocoulombs (nC) in the component's datasheet.

    180nC @ 10V
  • Rise Time

    In electronics, when describing a voltage or current step function, rise time is the time taken by a signal to change from a specified low value to a specified high value.

    99ns
  • Drain to Source Voltage (Vdss)

    The Drain to Source Voltage (Vdss) is a key parameter in electronic components, particularly in field-effect transistors (FETs) such as MOSFETs. It refers to the maximum voltage that can be applied between the drain and source terminals of the FET without causing damage to the component. Exceeding this voltage limit can lead to breakdown and potentially permanent damage to the device.Vdss is an important specification to consider when designing or selecting components for a circuit, as it determines the operating range and reliability of the FET. It is crucial to ensure that the Vdss rating of the component is higher than the maximum voltage expected in the circuit to prevent failures and ensure proper functionality.In summary, the Drain to Source Voltage (Vdss) is a critical parameter that defines the maximum voltage tolerance of a FET component and plays a significant role in determining the overall performance and reliability of electronic circuits.

    55V
  • Vgs (Max)

    Vgs (Max) refers to the maximum gate-source voltage that can be applied to a field-effect transistor (FET) without causing damage to the component. This parameter is crucial in determining the safe operating limits of the FET and helps prevent overvoltage conditions that could lead to device failure. Exceeding the specified Vgs (Max) rating can result in breakdown of the gate oxide layer, leading to permanent damage to the FET. Designers must ensure that the applied gate-source voltage does not exceed the maximum rating to ensure reliable and long-term operation of the electronic component.

    ±20V
  • Fall Time (Typ)

    Fall Time (Typ) is a parameter used to describe the time it takes for a signal to transition from a high level to a low level in an electronic component, such as a transistor or an integrated circuit. It is typically measured in nanoseconds or microseconds and is an important characteristic that affects the performance of the component in digital circuits. A shorter fall time indicates faster switching speeds and can result in improved overall circuit performance, such as reduced power consumption and increased data transmission rates. Designers often consider the fall time specification when selecting components for their circuits to ensure proper functionality and efficiency.

    96 ns
  • Continuous Drain Current (ID)

    Continuous Drain Current (ID) is a key parameter in electronic components, particularly in field-effect transistors (FETs) such as MOSFETs. It refers to the maximum current that can flow continuously through the drain terminal of the FET without causing damage to the component. This parameter is crucial for determining the power handling capability of the FET and is specified by the manufacturer in the component's datasheet. Designers must ensure that the actual operating current does not exceed the specified Continuous Drain Current to prevent overheating and potential failure of the component.

    -74A
  • Threshold Voltage

    The threshold voltage is a critical parameter in electronic components, particularly in field-effect transistors (FETs). It refers to the minimum voltage required at the input terminal of the FET to turn it on and allow current to flow between the source and drain terminals. Below the threshold voltage, the FET remains in the off state, acting as an open switch. Once the threshold voltage is exceeded, the FET enters the on state, conducting current between the source and drain.The threshold voltage is a key factor in determining the operating characteristics of FETs, such as their switching speed and power consumption. It is typically specified by the manufacturer and can vary depending on the specific type of FET and its design. Designers must consider the threshold voltage when selecting FETs for a particular application to ensure proper functionality and performance.

    -4V
  • JEDEC-95 Code

    JEDEC-95 Code is a standardized identification system used by the Joint Electron Device Engineering Council to categorize and describe semiconductor devices. This code provides a unique alphanumeric identifier for various memory components, ensuring consistency in documentation and communication across the electronics industry. The format includes information about the type, capacity, and technology of the device, facilitating easier specification and understanding for manufacturers and engineers.

    TO-220AB
  • Gate to Source Voltage (Vgs)

    The Gate to Source Voltage (Vgs) is a crucial parameter in electronic components, particularly in field-effect transistors (FETs) such as MOSFETs. It refers to the voltage difference between the gate and source terminals of the FET. This voltage determines the conductivity of the FET and controls the flow of current through the device. By varying the Vgs, the FET can be switched on or off, allowing for precise control of electronic circuits. Understanding and properly managing the Vgs is essential for ensuring the reliable and efficient operation of FET-based circuits.

    20V
  • Drain Current-Max (Abs) (ID)

    The parameter "Drain Current-Max (Abs) (ID)" in electronic components refers to the maximum current that can flow from the drain to the source terminal of a field-effect transistor (FET) or a similar device. It is a crucial specification that indicates the maximum current handling capability of the component before it reaches its saturation point or gets damaged. This parameter is typically specified in amperes (A) and helps designers ensure that the component can safely handle the expected current levels in a circuit without exceeding its limits. It is important to consider this parameter when designing circuits to prevent overloading the component and ensure reliable operation.

    64A
  • Drain-source On Resistance-Max

    Drain-source On Resistance-Max, commonly referred to as RDS(on) max, is a specification for MOSFETs that indicates the maximum resistance between the drain and source terminals when the device is turned on. This parameter is critical for assessing the efficiency of a MOSFET in a circuit, as lower values result in reduced power loss and heat generation during operation. It is measured in ohms and is influenced by factors such as temperature and gate-to-source voltage. Understanding RDS(on) max is essential for optimizing performance in power management and switching applications.

    0.02Ohm
  • Drain to Source Breakdown Voltage

    Drain to Source Breakdown Voltage, often denoted as V(BR) D-S, is a critical parameter in electronic components, particularly in field-effect transistors (FETs) and metal-oxide-semiconductor FETs (MOSFETs). It represents the maximum voltage that can be applied between the drain and source terminals of the device without causing breakdown or permanent damage. Exceeding this voltage can lead to excessive current flow, resulting in thermal failure or destruction of the component. It is essential for ensuring reliable operation in circuit designs where high voltages may be encountered.

    -55V
  • Pulsed Drain Current-Max (IDM)

    The parameter "Pulsed Drain Current-Max (IDM)" in electronic components refers to the maximum current that the device can handle when operated under pulsed conditions. This specification is important for understanding the device's capability to handle short bursts of high current without causing damage. It is typically measured in amperes and is specified for a specific pulse width and duty cycle. Designers use this parameter to ensure that the component can withstand transient current spikes without failing, making it crucial for applications where pulsed operation is common, such as in power electronics and RF circuits.

    260A
  • Dual Supply Voltage

    Dual Supply Voltage refers to an electronic component's requirement for two separate power supply voltages, typically one positive and one negative. This configuration is commonly used in operational amplifiers, analog circuits, and certain digital devices to allow for greater signal handling capabilities and improved performance. The use of dual supply voltages enables the device to process bipolar signals, thereby enhancing its functionality in various applications.

    -55V
  • Recovery Time

    Recovery time in electronic components refers to the time it takes for a device to return to its normal operating state after being subjected to a specific stimulus or disturbance. This parameter is particularly important in devices such as diodes, transistors, and capacitors, where the recovery time can impact the overall performance and reliability of the component. A shorter recovery time indicates that the component can quickly recover from a transient event, ensuring proper functionality and minimizing any potential disruptions in the circuit. Manufacturers typically provide recovery time specifications to help engineers and designers select components that meet the requirements of their specific applications.

    130 ns
  • Max Junction Temperature (Tj)

    Max Junction Temperature (Tj) refers to the maximum allowable temperature at the junction of a semiconductor device, such as a transistor or integrated circuit. It is a critical parameter that influences the performance, reliability, and lifespan of the component. Exceeding this temperature can lead to thermal runaway, breakdown, or permanent damage to the device. Proper thermal management is essential to ensure the junction temperature remains within safe operating limits during device operation.

    175°C
  • Nominal Vgs

    Nominal Vgs refers to the standard or expected gate-source voltage in field-effect transistors (FETs) and other related electronic components. It represents the voltage level at which the transistor operates optimally, ensuring proper switching characteristics and performance. This parameter is crucial for designers to determine the appropriate control signals required for efficient operation of the device in circuits. Variations from the nominal Vgs can affect the performance and reliability of the component.

    -4 V
  • Height
    19.8mm
  • Length
    10.5156mm
  • Width
    4.69mm
  • REACH SVHC

    The parameter "REACH SVHC" in electronic components refers to the compliance with the Registration, Evaluation, Authorization, and Restriction of Chemicals (REACH) regulation regarding Substances of Very High Concern (SVHC). SVHCs are substances that may have serious effects on human health or the environment, and their use is regulated under REACH to ensure their safe handling and minimize their impact.Manufacturers of electronic components need to declare if their products contain any SVHCs above a certain threshold concentration and provide information on the safe use of these substances. This information allows customers to make informed decisions about the potential risks associated with using the components and take appropriate measures to mitigate any hazards.Ensuring compliance with REACH SVHC requirements is essential for electronics manufacturers to meet regulatory standards, protect human health and the environment, and maintain transparency in their supply chain. It also demonstrates a commitment to sustainability and responsible manufacturing practices in the electronics industry.

    No SVHC
  • Radiation Hardening

    Radiation hardening is the process of making electronic components and circuits resistant to damage or malfunction caused by high levels of ionizing radiation, especially for environments in outer space (especially beyond the low Earth orbit), around nuclear reactors and particle accelerators, or during nuclear accidents or nuclear warfare.

    No
  • RoHS Status

    RoHS means “Restriction of Certain Hazardous Substances” in the “Hazardous Substances Directive” in electrical and electronic equipment.

    ROHS3 Compliant
  • Lead Free

    Lead Free is a term used to describe electronic components that do not contain lead as part of their composition. Lead is a toxic material that can have harmful effects on human health and the environment, so the electronics industry has been moving towards lead-free components to reduce these risks. Lead-free components are typically made using alternative materials such as silver, copper, and tin. Manufacturers must comply with regulations such as the Restriction of Hazardous Substances (RoHS) directive to ensure that their products are lead-free and environmentally friendly.

    Contains Lead, Lead Free
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IRF4905 Features

  • Package Type: TO-220

  • Transistor Type: N Channel

  • Max Voltage Applied From Drain to Source: -55V

  • Max Gate to Source Voltage Should Be: ±20V

  • Max Continues Drain Current is: –74A

  • Max Pulsed Drain Current is: –260A

  • Max Power Dissipation is: 200W

  • Minimum Voltage Required to Conduct: -2V to -4V

  • Max Storage & Operating temperature should be: -55 to +175 Celsius


IRF4905 Benefits

  • Increased ruggedness

  • Wide availability from distribution partners

  • Industry-standard qualification

  • High performance in low-frequency applications

  • Standard pin-out allows for drop-in replacement

  • High current capability


IRF4905 Equivalents

AM90P06-20P, AUIRF4905

 


Parts with Similar Specs

The three parts on the right have similar specifications to Infineon Technologies & IRF4905PBF.

IRF4905 Applications

  • Commercial and Industrial Applications

  • Fast Switching

  • Amplification Purpose


Where and How to Use IRF4905

The IRF4905 is suitable for a wide range of switching and amplification applications. It can be used as a switch in applications such as DC to DC converters, power supply, and any other application that fits within its parameters. It's also useful for making high-power audio amplifiers. It's also a trustworthy transistor for commercial and industrial applications.


IRF4905 Dimensions

irf4905 dimensions1.jpg

irf4905 dimensions2.jpg

IRF4905 Dimensions

IRF4905 Manufacturer

On April 1st, 1999, Siemens Semiconductors became Infineon Technologies. A dynamic more flexible company geared towards success in the competitive, ever-changing world of microelectronics. Infineon is a leading global designer, manufacturer, and supplier of a broad range of semiconductors used in various microelectronic applications. Infineon's product portfolio consists of logic products, including digital, mixed-signal, and analog integrated circuits, as well as discrete semiconductor products.


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Datasheet PDF

Download datasheets and manufacturer documentation for Infineon Technologies IRF4905PBF.
Frequently Asked Questions

What is IRF4905 used for?

It is a P-Channel HEXFET Power MOSFET available in a TO-220AB package and is based on Advanced Process Technology. It is mainly used for fast switching purposes, capable of providing ultra-low on-resistance.

How does IRF4905 work?

As it is a P-Channel – holes will be responsible for the current conduction. In this component, the body and substrate are composed of N-type material while the drain and source are composed of P-type material – Laying out an exact oppositive composition as compared to N-Channel MOSFET.

IRF4905PBF

Infineon Technologies

In Stock: 1000

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