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Microchip Technology DSC6001MI2B-012.2880 — Crystals & Oscillators

DSC6001MI2B-012.2880 MEMS XO 12.288 MHz CMOS AEC-Q100

MPNDSC6001MI2B-012.2880
Active

Microchip DSC60XX series MEMS XO, 12.288 MHz, CMOS output, ±25ppm stability, 1.71V–3.63V supply, AEC-Q100 qualified, -40°C to 85°C, 4-VFLGA package

$0.9450Ref. price · indicative, final on quote
Independent supplier — new & surplus stockAuthenticity-screened · ESD-safe packingListing updated Aug 2026

Specifications

DSC6001MI2B-012.2880 specifications
ParameterValue
TypeXO (Standard)
SeriesDSC60XX
MountingSurface Mount
Supply voltage1.71V ~ 3.63V
Current - supply1.3mA (Typ)
Frequency12.288 MHz
Frequency stability±25ppm
Operating temperature-40°C~85°C
Size (Dimension)0.079\" L x 0.063\" W (2.00mm x 1.60mm)
Height - seated0.035\" (0.89mm)
OutputCMOS
PackageBag
RatingsAEC-Q100
FunctionEnable/Disable
Base resonatorMEMS
Case4-VFLGA

Product details

The DSC6001MI2B-012.2880 is a MEMS-based XO (Standard) from Microchip's DSC60XX series, delivering a fixed 12.288 MHz CMOS output. The 1.71V to 3.63V supply range lets this oscillator run from a 1.8V, 2.5V, or 3.3V rail without a separate regulator, simplifying power tree design. Frequency stability is ±25ppm, a common grade for automotive and industrial timing where the clock must stay within a tight window over temperature and aging.

Enable/Disable pin and low-power profile

Frequently asked questions

Is the DSC6001MI2B-012.2880 AEC-Q100 qualified?

Yes, the DSC6001MI2B-012.2880 carries an AEC-Q100 rating, making it suitable for automotive applications including engine control, infotainment, and ADAS modules that require the -40°C to 85°C operating range.

Does the DSC6001MI2B-012.2880 have an enable/disable function?

Yes, the part includes an Enable/Disable function. Pulling the enable pin low disables the CMOS output, reducing current consumption for power-saving modes.

What is the frequency tolerance of the DSC6001MI2B-012.2880?

Frequency stability is ±25ppm over the full operating temperature range and supply voltage variation.