Microchip MCP14A0301-E/MS MOSFET Gate Driver, 3000 mA, 4.5 to 18V 8-Pin, MSOP
- RS Stock No.:
- 193-5485P
- Mfr. Part No.:
- MCP14A0301-E/MS
- Brand:
- Microchip
Subtotal 10 units (supplied in a tube)*
£5.07
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£6.08
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In Stock
- 100 unit(s) ready to ship
- Plus 999,999,890 unit(s) shipping from 17 November 2025
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Units | Per unit |
---|---|
10 + | £0.507 |
*price indicative
- RS Stock No.:
- 193-5485P
- Mfr. Part No.:
- MCP14A0301-E/MS
- Brand:
- Microchip
Specifications
Technical Reference
Legislation and Compliance
Product Details
Find similar products by selecting one or more attributes.
Select all | Attribute | Value |
---|---|---|
Brand | Microchip | |
Output Current | 3000 mA | |
Supply Voltage | 4.5 to 18V | |
Pin Count | 8 | |
Fall Time | 17ns | |
Package Type | MSOP | |
Driver Type | MOSFET | |
Select all | ||
---|---|---|
Brand Microchip | ||
Output Current 3000 mA | ||
Supply Voltage 4.5 to 18V | ||
Pin Count 8 | ||
Fall Time 17ns | ||
Package Type MSOP | ||
Driver Type MOSFET | ||
- COO (Country of Origin):
- TH
The MCP14A0301/2 devices are high-speed MOSFET drivers that are capable of providing up to 3.0A of peak current while operating from a single 4.5V to 18V supply. The inverting (MCP14A0301) or non-inverting (MCP14A0302) single channel output is directly controlled from either TTL or CMOS (2V to 18V) logic. These devices also feature low shoot-through current, matched rise and fall times, and short propagation delays which make them ideal for high switching frequency applications. The MCP14A0301/2 family of devices offer enhanced control with Enable functionality. The active-high Enable pin can be driven low to drive the output of the MCP14A0301/2 low, regardless of the status of the Input pin. An integrated pull-up resistor allows the user to leave the Enable pin floating for standard operation. Additionally, the MCP14A0301/2 devices feature separate ground pins (AGND and GND), allowing greater noise isolation between the level-sensitive Input/Enable pins and the fast, high-current transitions of the push-pull output stage.