UCC27323P
- Mfr.Part #
- UCC27323P
- Manufacturer
- Texas Instruments
- Package / Case
- 8-DIP (0.300, 7.62mm)
- Datasheet
- Download
- Description
- IC GATE DRVR LOW-SIDE 8DIP
- Stock
- 11,748
- In Stock :
- 11,748
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- Manufacturer :
- Texas Instruments
- Product Category :
- Gate Drivers
- Factory Lead Time :
- 6 Weeks
- Length :
- 9.81mm
- Output Voltage :
- 300mV
- Propagation Delay :
- 35 ns
- Terminal Position :
- Dual
- Number of Functions :
- 2
- Terminal Finish :
- Nickel/Palladium/Gold (Ni/Pd/Au)
- Radiation Hardening :
- No
- Supply Voltage :
- 14V
- REACH SVHC :
- No SVHC
- Package / Case :
- 8-DIP (0.300, 7.62mm)
- Output Characteristics :
- Standard
- Moisture Sensitivity Level (MSL) :
- 1 (Unlimited)
- Pbfree Code :
- yes
- Number of Outputs :
- 2
- Voltage - Supply :
- 4.5V~15V
- Rise Time :
- 40ns
- Thickness :
- 3.9mm
- Output Current :
- 4A
- Max Output Current :
- 4.5A
- Power Supplies :
- 4.5/15V
- Output Peak Current Limit-Nom :
- 4A
- JESD-609 Code :
- e4
- Operating Supply Voltage :
- 12V
- Max Supply Current :
- 450μA
- Base Part Number :
- UCC27323
- Driven Configuration :
- Low-Side
- Turn On Delay Time :
- 35 ns
- Fall Time (Typ) :
- 40 ns
- Height :
- 5.08mm
- Mount :
- Through Hole
- Output Polarity :
- INVERTED
- ECCN Code :
- EAR99
- Power Dissipation :
- 780mW
- Packaging :
- Tube
- Mounting Type :
- Through Hole
- Input Type :
- Inverting
- Weight :
- 440.409842mg
- Operating Temperature :
- -55°C~150°C TJ
- Pin Count :
- 8
- Turn On Time :
- 0.04 µs
- Lifecycle Status :
- ACTIVE (Last Updated: 1 day ago)
- Lead Free :
- Lead Free
- RoHS Status :
- ROHS3 Compliant
- Width :
- 6.35mm
- Number of Pins :
- 8
- Channel Type :
- Independent
- Logic Voltage - VIL, VIH :
- 1V 2V
- High Side Driver :
- No
- Interface IC Type :
- BUFFER OR INVERTER BASED MOSFET DRIVER
- Max Power Dissipation :
- 780mW
- Current - Peak Output (Source, Sink) :
- 4A 4A
- Nominal Supply Current :
- 450μA
- Number of Terminations :
- 8
- Gate Type :
- N-Channel, P-Channel MOSFET
- Turn Off Time :
- 0.05 μs
- Rise / Fall Time (Typ) :
- 20ns 15ns
- Datasheets
- UCC27323P

Gate Drivers Texas Instruments UCC27323P Overview
The UCC27323P from Texas Instruments represents a robust solution tailored for low-side gate driving applications, demonstrating exceptional utility in driving MOSFETs and IGBTs. This IC gate driver is packaged in a compact 8-pin DIP, engineered for high-speed performance while minimizing power losses. Its design incorporates features that ensure reliable operation even under challenging conditions, making it an excellent choice for high-efficiency, high-frequency applications. Using the keyword, Gate Drivers Texas Instruments UCC27323P, this product offers unmatched performance that aligns with the demanding needs of modern electronic circuits.
UCC27323P Features
This gate driver IC highlights several key features including high peak output drive current of up to 4 A, which ensures rapid charging and discharging of gate capacitance effectively, dual outputs that can be controlled independently or tied together for higher current capability, and a wide supply voltage range from 4 V to 15 V which accommodates a variety of logic levels. Additionally, its robust design provides built-in protection against under-voltage lockout, enhancing the reliability and longevity of the device.
UCC27323P Applications
- DC/AC Converters: The UCC27323P efficiently drives MOSFETs in DC to AC converter circuits, enabling reliable switching that translates to higher converter efficiencies.
- Motor Control Systems: Utilized in controlling the gates of MOSFETs and IGBTs in motor drivers, this IC helps in achieving smooth and efficient motor operation, suitable for both industrial and consumer applications.
- Power Supplies: In power supply units, this gate driver ensures stable and efficient control of low-side switches, crucial for maintaining steady operation under varying load conditions.
- LED Lighting: It plays a key role in LED lighting systems where it drives switching components that regulate power delivery to LEDs, ensuring optimal light output and energy efficiency.
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