HIP2103FRTAAZ-T Allicdata Electronics
Allicdata Part #:

HIP2103FRTAAZ-T-ND

Manufacturer Part#:

HIP2103FRTAAZ-T

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Intersil
Short Description: IC DRVR HALF BRIDGE 60V 8-DFN
More Detail: Half-Bridge Gate Driver IC Non-Inverting 8-TDFN (3...
DataSheet: HIP2103FRTAAZ-T datasheetHIP2103FRTAAZ-T Datasheet/PDF
Quantity: 1000
Stock 1000Can Ship Immediately
Specifications
Logic Voltage - VIL, VIH: 1.63V, 2.06V
Supplier Device Package: 8-TDFN (3x3)
Package / Case: 8-WDFN 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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PMIC (power management integrated circuit) gate drivers are commonly used in power management systems as they control the switching performance at high frequencies, reduce the total power losses due to conduction and switching losses, and reduce electromagnetic interference. The HIP2103FRTAAZ-T is a dual-output gate drive IC operating over an -40 °C to 125 °C temperature range. This application field and working principle will be discussed in the sections below.

Application Field

The HIP2103FRTAAZ-T is designed to drive two independent N-channel MOSFETs. It is used in applications such as gate drivers in AC/DC, DC/DC and resonant converters, as well as phase-shifted full-bridge circuits. Also, it can be used in Class-D audio amplifiers, motor control circuits and other applications requiring high-current gate driver capability.

The HIP2103FRTAAZ-T is specifically designed for applications requiring high current, high frequency MOSFET control. It is an ideal choice for use in systems where efficiency, low resonant ring frequency and low EMI are primary design goals. It is also well-suited for applications where fast gate rise/fall time, low cross conduction and EMI immunity is required.

Working Principle

The HIP2103FRTAAZ-T operates using a variety of different operating principles. The output of the gate drive IC is supplied with variable gate drive capability to guarantee performance in a wide range of switching frequencies. The IC is designed to reduce power losses due to conduction and switching losses as well as provide ripple-free gate drive signal. To keep the output stage in constant voltage mode, the HIP2103FRTAAZ-T features a highly efficient regulation scheme.

The IC uses a proprietary technology to reduce cross-conduction which is beneficial in reducing switching losses at high frequencies. This technology works in unison with its proprietary high frequency slew rate control to enable fast rise/fall times of the switching driver outputs. Additionally, integrated internal Miller loop compensation adjusts the operating frequency automatically to decrease EMI from the system.

The IC also features a diagnostic system, which is comprised of several features to protect the output stage by monitoring various conditions such as current overshoot and temperature. If an abnormal condition is detected, the device shuts down to protect the output stage. The shutdown feature is also used to keep the output stage from running in a saturated state.

In addition to the above mentioned features, the HIP2103FRTAAZ-T has a number of other features including a low power consumption, a wide operating temperature range, and a robust package to ensure reliable performance under extreme conditions.

The HIP2103FRTAAZ-T is a high-performance, reliable gate driver IC offering the versatility and flexibility needed to drive a variety of MOSFET input stages at high frequencies and low power losses. This is achieved by the combination of its stringent operating principles, proprietary technologies and low power consumption.

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

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