Skip to main content
Microchip Technology DSC1001AI2-024.0000 — Crystals & Oscillators

DSC1001AI2-024.0000 MEMS Oscillator – AEC-Q100, 24 MHz, CMOS

MPNDSC1001AI2-024.0000
Active

Microchip DSC1001AI2-024.0000, MEMS-based XO (Standard), 24 MHz, CMOS output, AEC-Q100 qualified, 1.8V–3.3V supply, standby (power-down) function, -40°C to 85°C, 4-SMD package.

Sourced new & surplus through independent channelsAuthenticity-screened · ESD-safe packingListing updated Aug 2026

Specifications

DSC1001AI2-024.0000 specifications
ParameterValue
TypeXO (Standard)
SeriesDSC1001
MountingSurface Mount
Voltage1.8V ~ 3.3V
Current - supply6.3mA
Current - supply (Disable)15µA
Frequency24 MHz
Frequency stability±25ppm
Operating temperature-40°C~85°C
Size (Dimension)0.276\" L x 0.197\" W (7.00mm x 5.00mm)
Height - seated0.035\" (0.90mm)
OutputCMOS
PackageTube
RatingsAEC-Q100
FunctionStandby (Power Down)
Base resonatorMEMS
Case4-SMD, No Lead Exposed Pad

Product details

24 MHz MEMS XO with automotive qualification

The DSC1001AI2-024.0000 is a 24 MHz MEMS-based oscillator (XO Standard) from Microchip's DSC1001 series, delivering a CMOS output across a 1.8V to 3.3V supply range.

Package and temperature range for board fit

Housed in a 4-SMD, No Lead Exposed Pad package measuring 7.00 mm x 5.00 mm with a seated height of 0.90 mm — a standard footprint that matches many 7x5 mm oscillator pads.

Frequently asked questions

Is the DSC1001AI2-024.0000 AEC-Q100 qualified?

Yes, it carries AEC-Q100 ratings, making it suitable for automotive applications that require documented reliability testing per the AEC-Q100 stress and qualification standard.

What supply voltage does the DSC1001AI2-024.0000 accept?

It operates from 1.8V to 3.3V, covering common 1.8V, 2.5V, and 3.3V digital rails without an external regulator or level translator.

Does the DSC1001AI2-024.0000 have a standby or power-down mode?

Yes, it includes a standby (power-down) function. When disabled, the maximum supply current drops to 15 µA, allowing the clock to be gated in low-power system states.