NCP81253MNTBG Allicdata Electronics
Allicdata Part #:

NCP81253MNTBGOSTR-ND

Manufacturer Part#:

NCP81253MNTBG

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: ON Semiconductor
Short Description: IC MOSFET DVR SYNC BUCK 8DFN
More Detail: Half-Bridge Gate Driver IC Non-Inverting 8-DFN (2x...
DataSheet: NCP81253MNTBG datasheetNCP81253MNTBG Datasheet/PDF
Quantity: 1000
Stock 1000Can Ship Immediately
Specifications
Logic Voltage - VIL, VIH: 0.7V, 3.4V
Supplier Device Package: 8-DFN (2x2)
Package / Case: 8-VFDFN Exposed Pad
Mounting Type: Surface Mount
Operating Temperature: -40°C ~ 150°C (TJ)
Rise / Fall Time (Typ): 16ns, 11ns
High Side Voltage - Max (Bootstrap): 35V
Input Type: Non-Inverting
Current - Peak Output (Source, Sink): --
Series: --
Voltage - Supply: 4.5 V ~ 5.5 V
Gate Type: N-Channel MOSFET
Number of Drivers: 2
Channel Type: Synchronous
Driven Configuration: Half-Bridge
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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The NCP81253MNTBG is a high-performance Gate Driver integrated circuit (IC) specifically engineered for use in a broad range of automotive, industrial, and consumer applications. This chip is a part of ON Semi\'s NCP81253 Gate Driver family, and provides a wide operating range with low power consumption. The NCP81253MNTBG provides a high driving capability with an adjustable slew rate, adjustable output voltage, and exceptional noise immunity and reliability. This makes it the ideal choice for high performance automotive, industrial, and consumer applications.

The NCP81253MNTBG Gate Driver operates in a variety of automotive, industrial and consumer applications by providing high-quality signals to the power switches. It is designed to control the switching of one or more IGBTs or MOSFETs from the input of an alternating current (AC) or direct current (DC). The chip is also capable of driving alternative output peripheral devices such as motors, solenoids and LED displays.

When using the NCP81253MNTBG Gate Driver for an automotive application, this IC can be powered by either a 5/12V main battery or an 8/14V main battery. The NCP81253MNTBG also provides an adjustable gate voltage from 20V to 50V. Additionally, it has an adjustable over current protection and an adjustable over-voltage protection.

The NCP81253MNTBG Gate Driver has an operational temperature range of -40°C to 125°C and can provide up to 4A of output current. It also has a wide operating range with low power consumption, making it an ideal choice for automotive, industrial, and consumer applications. This chip has a built-in high dV/dt and low dV/dt sensitivity, as well as adjustable input and output slew rates.

In terms of its application field, the NCP81253MNTBG Gate Driver is a great choice for automotive, industrial, and consumer applications. It is suitable for motor control, LED lighting, and other applications that require high current switching. Additionally, the chip can be used to drive the power IGBTs and MOSFETs in DC/DC converters, full and half H-bridge inverters, and switch mode power supplies (SMPS).

The working principle of the NCP81253MNTBG Gate Driver is as follows: The Gate Driver receives an input signal from the main control system and this input is used to turn on and off the IGBTs or MOSFETs. The Gate Driver then provides a low-level voltage at the gate of the device. This voltage is then boosted to a high voltage, depending upon the application. This high voltage helps to turn on the device and facilitate the flow of current between the power switches.

In summary, the NCP81253MNTBG is a high-performance Gate Driver integrated circuit (IC) specifically engineered for use in a broad range of automotive, industrial, and consumer applications. This chip provides a wide operating range with low power consumption, adjustable gate voltage from 20V to 50V, and an adjustable over current protection and over-voltage protection. This chip is suitable for motor control, LED lighting, and other applications that require high current switching. Additionally, its working principle revolves around receiving input signals from the main control system, providing a low-level voltage at the gate of the device, and then boosting it to a high voltage to turn on or off the device.

The specific data is subject to PDF, and the above content is for reference

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