MCP14E10-E/MF Allicdata Electronics
Allicdata Part #:

MCP14E10-E/MF-ND

Manufacturer Part#:

MCP14E10-E/MF

Price: $ 1.04
Product Category:

Integrated Circuits (ICs)

Manufacturer: Microchip Technology
Short Description: IC MOSFET DRIVER 3A 8DFN-S
More Detail: Low-Side Gate Driver IC Non-Inverting 8-DFN-S (6x5...
DataSheet: MCP14E10-E/MF datasheetMCP14E10-E/MF Datasheet/PDF
Quantity: 1000
1 +: $ 1.04000
10 +: $ 1.00880
100 +: $ 0.98800
1000 +: $ 0.96720
10000 +: $ 0.93600
Stock 1000Can Ship Immediately
$ 1.04
Specifications
Logic Voltage - VIL, VIH: 0.8V, 2.4V
Base Part Number: MCP14E10
Supplier Device Package: 8-DFN-S (6x5)
Package / Case: 8-VDFN Exposed Pad
Mounting Type: Surface Mount
Operating Temperature: -40°C ~ 150°C (TJ)
Rise / Fall Time (Typ): 25ns, 25ns
Input Type: Non-Inverting
Current - Peak Output (Source, Sink): 3A, 3A
Series: --
Voltage - Supply: 4.5 V ~ 18 V
Gate Type: IGBT, N-Channel, P-Channel MOSFET
Number of Drivers: 2
Channel Type: Independent
Driven Configuration: Low-Side
Part Status: Active
Packaging: Tube 
Description

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MCP14E10-E/MF gate drivers are a kind of PMIC (Power Management IC) designed for driving high power and high speed MOSFETs. This gate driver provides a very high performance/cost ratio for low power consumption and efficient heat dissipation. The MCP14E10-E/MF gate driver is an ideal choice for applications where high speed switching and power efficiency are crucial.

The MCP14E10-E/MF gate driver is an advanced power device that is designed to be highly efficient and feature a wide range of control options. It provides adjustable gate voltage, current sense, and start up delay. It is suitable for switching and controlling high-power circuits with high speed. It is capable of providing high speed power control up to 32 volts. This makes the MCP14E10-E/MF gate driver suitable for a variety of applications including automotive, consumer electronics, telecommunications, power supplies, and renewable energy.

The MCP14E10-E/MF gate driver has an integrated logic level converter circuit. This enables the gate driver to operate from an input voltage of 1.5 volts to 5 volts, supporting both CMOS and TTL logic. It also has an adjustable shutdown threshold and a low output voltage drop. The gate driver has an adjustable overcurrent protection that can detect and respond to overcurrent situations.

The working principle of the MCP14E10-E/MF gate driver is simple. It consists of a control circuit and power stage. The control circuit consists of various internal devices like p-channel MOSFETs, current sensing circuitry, and logic level converter. The power stage consists of a start-up delay circuit, current limiting circuitry, and a gate driver. The control circuit provides the gate driver with all the relevant input signals, such as the gate voltage and the current limit. The gate driver then uses this information to control the gate voltage of the power device.

The MCP14E10-E/MF gate driver has several applications in many fields, including industrial, renewable energy, telecommunication, and power supplies. In industrial applications, it can be used to control the speed of conveyor belts and other machinery. In telecommunication, the MCP14E10-E/MF gate driver can be used for switch mode power supplies and down-converter circuits. In renewable energy, it is used for controlling the switching of photovoltaic and wind turbine inverters. In power supplies, it can be used for high speed switching and controlling of step-down and step-up regulators.

The MCP14E10-E/MF gate driver is an advanced and efficient gate driver suitable for a variety of applications. It provides adjustable gate voltage, current sense, and startup delay. It is capable of providing high speed power control up to 32 volts. The integrated logic level converter circuit enables the gate driver to operate from an input voltage of 1.5 volts to 5 volts, supporting both CMOS and TTL logic. Additionally, it has an adjustable overcurrent protection circuit. This makes the MCP14E10-E/MF gate driver an ideal choice for applications where high speed switching and power efficiency are crucial.

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

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