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Microchip Technology DSC1121DL1-025.0000 — Crystals & Oscillators

DSC1121DL1-025.0000 MEMS XO – 25 MHz CMOS, Active, Microchip

MPNDSC1121DL1-025.0000
Active

Microchip DSC1121 series MEMS XO, 25.0000 MHz, CMOS output, ±50 ppm stability, 2.25 V – 3.6 V supply, 6-pin 2.5×2.0 mm SMD package, -40°C to +105°C operating range.

Independent supplier — new & surplus stockAuthenticity-screened · ESD-safe packingListing updated Aug 2026

Specifications

DSC1121DL1-025.0000 specifications
ParameterValue
TypeXO (Standard)
SeriesDSC1121
MountingSurface Mount
Supply voltage2.25V ~ 3.6V
Current - supply22mA
Frequency25 MHz
Frequency stability±50ppm
Operating temperature-40°C~105°C
Size (Dimension)0.098\" L x 0.079\" W (2.50mm x 2.00mm)
Height - seated0.035\" (0.90mm)
OutputCMOS
PackageTube
FunctionEnable/Disable
Base resonatorMEMS
Case6-SMD, No Lead

Product details

MEMS XO replaces quartz at 25 MHz

Supply voltage spans 2.25 V to 3.6 V, covering 2.5 V and 3.3 V logic rails without an external regulator — the Enable/Disable function lets the system gate the clock for power savings.

Industrial temperature and ±50 ppm stability

Maximum supply current is 22 mA at 25 MHz CMOS output — the MEMS core draws less than a comparable quartz oscillator, reducing the thermal load in a 2.5×2.0 mm package.

Active lifecycle — no quartz lead-time risk

Frequently asked questions

Where can I buy DSC1121DL1-025.0000 and how is it quoted?

The part carries Active lifecycle status from Microchip, so there is no last-time-buy pressure. Submit an RFQ for current pricing and lead-time confirmation.

Can DSC1121DL1-025.0000 replace a standard 25 MHz quartz crystal oscillator on my board?

Yes — the DSC1121DL1-025.0000 is a MEMS XO that outputs a 25 MHz CMOS signal in a standard 6-SMD, No Lead package (2.5×2.0 mm). It is pin-compatible with many quartz oscillators of the same footprint and supply voltage range (2.25 V – 3.6 V). The MEMS resonator offers better shock and vibration tolerance than quartz, which can improve reliability in high-vibration environments.