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SOT-363
Integrated Circuits (ICs)

MIC94063YC6-TR

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Microchip Technology

USB POWER SW HI SIDE SINGLE 1.7V TO 5.5V 6-PIN SC-70 T/R

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SOT-363
Integrated Circuits (ICs)

MIC94063YC6-TR

Active
Microchip Technology

USB POWER SW HI SIDE SINGLE 1.7V TO 5.5V 6-PIN SC-70 T/R

Deep-Dive with AI

Technical Specifications

Parameters and characteristics for this part

SpecificationMIC94063YC6-TR
Current - Output (Max) [Max]2 A
FeaturesSlew Rate Controlled, Load Discharge
Input TypeNon-Inverting
InterfaceOn/Off
Mounting TypeSurface Mount
Number of Outputs1
Operating Temperature [Max]125 °C
Operating Temperature [Min]-40 °C
Output ConfigurationHigh Side
Output TypeP-Channel
Package / Case6-TSSOP, SC-88, SOT-363
Ratio - Input:Output [custom]1:1
Rds On (Typ)77 mOhm
Supplier Device PackageSC-70-6
Switch TypeGeneral Purpose
Voltage - Load [Max]5.5 V
Voltage - Load [Min]1.7 V
Voltage - Supply (Vcc/Vdd)False

Pricing

Prices provided here are for design reference only. For realtime values and availability, please visit the distributors directly

DistributorPackageQuantity$
DigikeyCut Tape (CT) 1$ 0.95
25$ 0.78
100$ 0.72
Digi-ReelÛ 1$ 0.95
25$ 0.78
100$ 0.72
Tape & Reel (TR) 3000$ 0.72
Microchip DirectT/R 1$ 0.95
25$ 0.78
100$ 0.72
1000$ 0.69

Description

General part information

MIC94063 Series

The MIC94060-63 are high-side load switches designed for operation between 1.7V to 5.5V. The devices contain a low on-resistance P-channel MOSFET that supports over 2A of continuous current. The MIC94061and MIC94063 features an active load discharge circuit which insures capacitive loads retain no charge when the main switch is in an OFF state.

MIC94060-61 feature rapid turn on while MIC94062-63 provide a slew rate controlled Soft-Start turn-on of 800µs (typical) to prevent in-rush current from glitching supply rails.

An active pull-down on the enable input keeps MIC94060-63 in a default OFF state until the EN pin is pulled to a high level. Built-in level shift circuitry allows low voltage logic signals to switch higher supply voltages, or vice versa; high level logic signals can control low level voltages.