HIP2104FRAANZ-T7A Allicdata Electronics
Allicdata Part #:

HIP2104FRAANZ-T7ATR-ND

Manufacturer Part#:

HIP2104FRAANZ-T7A

Price: $ 1.37
Product Category:

Integrated Circuits (ICs)

Manufacturer: Intersil
Short Description: IC DRIVER HALF-BRIDGE 12-DFN
More Detail: Half-Bridge Gate Driver IC Non-Inverting 12-DFN (4...
DataSheet: HIP2104FRAANZ-T7A datasheetHIP2104FRAANZ-T7A Datasheet/PDF
Quantity: 1000
250 +: $ 1.24740
500 +: $ 1.09148
1250 +: $ 0.90437
2500 +: $ 0.84200
6250 +: $ 0.81081
Stock 1000Can Ship Immediately
$ 1.37
Specifications
Logic Voltage - VIL, VIH: 1.63V, 2.06V
Supplier Device Package: 12-DFN (4x4)
Package / Case: 12-VFDFN Exposed Pad
Mounting Type: Surface Mount
Operating Temperature: -40°C ~ 125°C (TJ)
Rise / Fall Time (Typ): 8ns, 2ns
High Side Voltage - Max (Bootstrap): 60V
Input Type: Non-Inverting
Current - Peak Output (Source, Sink): 1A, 1A
Series: --
Voltage - Supply: 4.5 V ~ 14 V
Gate Type: N-Channel MOSFET
Number of Drivers: 2
Channel Type: Independent
Driven Configuration: Half-Bridge
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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Power Management IC (PMIC) – Gate Drivers are system-on-chip integrated solutions that are used to drive and control power switches, such as MOSFETs and IGBTs, in power conversion applications. The HIP2104FRAANZ-T7A is a single-package solution that combines a high-speed Gate Driver, precision current sensing and protection circuits, and a high-side current monitor in a small package. This device is designed for high-performance power conversion applications, such as battery-charging systems, automotive powertrains, and power supplies. It is a highly integrated, single-package device that enables minimized power loss, improved reliability and simplified digital control of power switching applications.

The HIP2104FRAANZ-T7A is a high-speed, system-on-chip Gate Driver that provides the necessary drive current to efficiently switch Power MOSFETs and IGBTs for high-performance power conversion systems. It is designed for low power loss, high efficiency, and high reliability in switching applications. This device includes a high-side Gate Driver, a precision current sensing circuit, and a built-in protection circuit which allows for safe and reliable operation. This device is highly integrated, with a single-package solution which reduces system complexity and increases manufacturer design margins.

The Gate Driver of the HIP2104FRAANZ-T7A is designed to efficiently drive MOSFETs and IGBTs with a minimum of switching losses. The Gate Drive stage of the device consists of two low-impedance Gate Driver outputs, and two high-impedance Gate Outputs. The low-impedance outputs provide a higher drive level current, while the high-impedance outputs can directly drive the loads, improving system efficiency. Additionally, the Gate Driver has two current sense inputs and a precision current monitor, which can be used for power FET current sensing and monitoring. This feature can be used to accurately measure the current being supplied to the load, and prevent potential over-current conditions.

The HIP2104FRAANZ-T7A also includes a built-in protection circuit which prevents excessive power dissipation and potential over-current conditions. The protection circuit is designed to detect an over-current scenario and automatically shutdown the system to protect the device and prevent damage. Additionally, the device includes a power-on reset signal which ensures that the device starts up in a known safe state upon system power-up.

The HIP2104FRAANZ-T7A combines a high-speed Gate Driver, precision current sensing, and protection circuits, and a high-side current monitor in a small package. This device is designed for high-performance power conversion applications, such as battery-charging systems, automotive powertrains, and power supplies. It is a highly integrated, single-package device that enables minimized power loss, improved reliability and simplified digital control of power switching applications.

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

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