UC2708N

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Mfr.Part #
UC2708N
Manufacturer
Texas Instruments
Package / Case
8-DIP (0.300, 7.62mm)
Datasheet
Download
Description
IC GATE DRVR LOW-SIDE 8DIP
Stock
1
In Stock :
1

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Manufacturer :
Texas Instruments
Product Category :
Gate Drivers
Turn Off Time :
0.055 µs
RoHS Status :
ROHS3 Compliant
Max Supply Current :
26mA
Packaging :
Tube
Power Supplies :
10/35V
Fall Time (Typ) :
50 ns
Output Characteristics :
TOTEM-POLE
Number of Drivers :
2
Length :
9.81mm
JESD-609 Code :
e4
Width :
6.35mm
Max Output Current :
3A
Logic Voltage - VIL, VIH :
0.8V 2V
Operating Temperature :
-25°C~85°C TA
Supply Voltage :
20V
Output Peak Current Limit-Nom :
3A
Rise Time :
45ns
Pin Count :
8
Gate Type :
N-Channel, P-Channel MOSFET
Input Characteristics :
Standard
Mount :
Through Hole
Lifecycle Status :
ACTIVE (Last Updated: 4 days ago)
Mounting Type :
Through Hole
Terminal Finish :
Nickel/Palladium/Gold (Ni/Pd/Au)
Lead Free :
Lead Free
Thickness :
3.9mm
Turn On Delay Time :
25 ns
ECCN Code :
EAR99
Moisture Sensitivity Level (MSL) :
1 (Unlimited)
Driven Configuration :
Low-Side
Pbfree Code :
yes
Weight :
528.605208mg
Channel Type :
Independent
Propagation Delay :
25 ns
Nominal Supply Current :
26mA
Terminal Position :
Dual
Factory Lead Time :
6 Weeks
Input Type :
Non-Inverting
Voltage - Supply :
5V~35V
Turn On Time :
0.075 μs
Output Current :
3A
Output Polarity :
TRUE
Current - Peak Output (Source, Sink) :
3A 3A
Height :
5.08mm
Base Part Number :
UC2708
Interface IC Type :
BUFFER OR INVERTER BASED MOSFET DRIVER
Rise / Fall Time (Typ) :
25ns 25ns
Number of Pins :
8
Number of Functions :
2
Package / Case :
8-DIP (0.300, 7.62mm)
Number of Terminations :
8
Radiation Hardening :
No
High Side Driver :
No
Datasheets
UC2708N
Introducing Gate Drivers Texas Instruments UC2708N from Chip IC,where excellence meets affordability. This product stands out with its Operating Temperature:-25°C~85°C TA, Mounting Type:Through Hole, Base Part Number:UC2708, Number of Pins:8, Package / Case:8-DIP (0.300, 7.62mm), Number of Terminations:8, UC2708N pinout, UC2708N datasheet PDF, UC2708N amp .Beyond Gate Drivers Texas Instruments UC2708N ,we also offer FAN3180TSX, DGD2104MS8-13, IRS2005STRPBF, Our vast inventory has you covered. Contact us now for immediate solutions.

Texas Instruments UC2708N


Gate Drivers Texas Instruments UC2708N Overview

Introducing the robust UC2708N from Texas Instruments, a low-side gate driver designed to optimize the efficiency and reliability of your electronic designs. This component is part of the crucial Gate Drivers category, specifically engineered to drive MOSFETs and IGBTs with high efficiency and precision. The UC2708N ensures a low propagation delay and reduced drive loss, making it an excellent choice for high-performance applications that require accurate switching characteristics. By integrating the UC2708N, manufacturers can significantly improve system reliability and functionality, making it a cornerstone for developing advanced electronic systems.

UC2708N Features

The UC2708N boasts a dual-output configuration, enabling it to effectively drive two independent gates with ease. It features a wide operating voltage range, making it versatile for use in various circuit environments. Its high-current output capability ensures sufficient drive for a range of power devices, enhancing overall system efficiency. Additionally, the UC2708N's built-in protection mechanisms, such as over-current and thermal shutdown, provide essential safeguards, enhancing the durability and reliability of your applications.

UC2708N Applications

  • Motor Control Systems: Utilized in driving the gates of MOSFETs or IGBTs for motor controllers, ensuring efficient operation and speed control in industrial and automotive applications.
  • Switch Mode Power Supplies (SMPS): Enhances performance by driving the low-side switches used in various topologies of power supplies, improving efficiency and reducing electromagnetic interference (EMI).
  • DC-DC Converters: Applied in the gate driving of switching transistors, crucial for maintaining stable operation and optimal efficiency in voltage conversion processes in portable devices and telecommunications equipment.
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