IR2302PBF
- Mfr.Part #
- IR2302PBF
- Manufacturer
- Infineon Technologies
- Package / Case
- 8-DIP (0.300, 7.62mm)
- Datasheet
- Download
- Description
- IC GATE DRVR HALF-BRIDGE 8DIP
- Stock
- 25,621
- In Stock :
- 25,621
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- Manufacturer :
- Infineon Technologies
- Product Category :
- Gate Drivers
- Output Peak Current Limit-Nom :
- 0.2A
- Additional Feature :
- FLOATING LOAD DRIVER; UNDER VOLTAGE LOCKOUT CIRCUIT
- Terminal Position :
- Dual
- Fall Time (Typ) :
- 80 ns
- Time@Peak Reflow Temperature-Max (s) :
- NOT SPECIFIED
- High Side Driver :
- yes
- Output Voltage :
- 620V
- Max Supply Current :
- 1.6mA
- High Side Voltage - Max (Bootstrap) :
- 600V
- Moisture Sensitivity Level (MSL) :
- 1 (Unlimited)
- ECCN Code :
- EAR99
- Input Type :
- Non-Inverting
- Nominal Supply Current :
- 1.6mA
- RoHS Status :
- ROHS3 Compliant
- Number of Pins :
- 8
- Width :
- 7.11mm
- Package / Case :
- 8-DIP (0.300, 7.62mm)
- Power Supplies :
- 15V
- Gate Type :
- IGBT, N-Channel MOSFET
- Driven Configuration :
- Half-Bridge
- Rise Time :
- 220ns
- Supply Voltage :
- 15V
- Turn-Off Delay Time :
- 200 ns
- Max Output Current :
- 350mA
- Power Dissipation :
- 1W
- Lead Free :
- Lead Free
- Voltage - Supply :
- 5V~20V
- Number of Terminations :
- 8
- Height :
- 5.33mm
- Mount :
- Through Hole
- Rise / Fall Time (Typ) :
- 130ns 50ns
- Turn On Delay Time :
- 70 ns
- Published :
- 1996
- REACH SVHC :
- No SVHC
- Mounting Type :
- Through Hole
- Current - Peak Output (Source, Sink) :
- 200mA 350mA
- Max Power Dissipation :
- 1W
- Turn On Time :
- 0.95 μs
- Base Part Number :
- IR2302PBF
- Output Current :
- 200mA
- Operating Temperature :
- -40°C~150°C TJ
- Length :
- 10.92mm
- Qualification Status :
- Not Qualified
- Peak Reflow Temperature (Cel) :
- NOT SPECIFIED
- Factory Lead Time :
- 12 Weeks
- Packaging :
- Tube
- Number of Drivers :
- 2
- Propagation Delay :
- 950 ns
- Number of Functions :
- 1
- Channel Type :
- SYNCHRONOUS
- Logic Voltage - VIL, VIH :
- 0.8V 2.9V
- Datasheets
- IR2302PBF

Gate Drivers Infineon Technologies IR2302PBF Overview
The Infineon Technologies IR2302PBF is a high-performance, half-bridge gate driver designed to drive N-channel power MOSFETs and IGBTs. This device integrates two independent driver channels with a common shutdown function, offering precision and reliability in a range of demanding applications. The IR2302PBF simplifies the design of motor control and power conversion systems by providing efficient switching, protective features, and a robust design. With its high-voltage tolerance and dual independent high and low driver channels, this gate driver is a versatile choice for developers aiming to optimize power efficiency and performance in their electronic designs.
IR2302PBF Features
The IR2302PBF gate driver includes a variety of features that enhance its performance and reliability. These features include independent high-side and low-side output channels, matched propagation delay for both channels, under-voltage lockout for both channels, and a 3.3V to 15V input compatible logic interface. Additionally, it supports up to 600V maximum offset voltage and offers integrated dead-time for shoot-through protection, making it an ideal solution for sophisticated and high-voltage applications.
IR2302PBF Applications
- DC/AC Inverters: The IR2302PBF is extensively used in the control of MOSFETs and IGBTs within DC/AC inverters, ensuring efficient power conversion and reliability for renewable energy applications and uninterruptible power supplies.
- Motor Drives: Applicable in driving both brushless and induction motors, the IR2302PBF provides robust and efficient control in electric vehicle powertrains, industrial machine tools, and HVAC systems.
- Power Supplies: This driver is integral in switch-mode power supplies, offering the necessary drive strength and protection to handle high currents and voltages, thus enhancing power supply reliability and performance.
- Welding Equipment: The robust output drivers and high-voltage capabilities make the IR2302PBF suitable for modern welding equipment, where precise control over power delivery is crucial for effective welding.
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