Manufacturer Part Number
DSC1001DI5-060.0000T
Manufacturer
Microchip Technology
Introduction
The DSC1001DI5-060.0000T is a high-performance MEMS-based crystal oscillator from Microchip Technology. It offers a reliable and compact solution for a wide range of applications that require a stable and accurate clock signal.
Product Features and Performance
MEMS-based resonator for improved stability and reliability
Frequency of 60 MHz
Standby (Power Down) function for low-power operation
CMOS output
Supply voltage range of 1.8V to 3.3V
Frequency stability of ±10 ppm
Operating temperature range of -40°C to 85°C
Low current consumption of 7.2 mA (max) in active mode and 15 μA (max) in disabled mode
Product Advantages
Compact surface-mount package (4-VDFN, 2.50mm x 2.00mm)
AEC-Q100 qualified for automotive applications
Reliable and stable performance
Low power consumption for energy-efficient designs
Key Reasons to Choose This Product
Exceptional frequency stability and accuracy
Compact and space-saving design
Automotive-grade quality and reliability
Versatile power management options for low-power applications
Suitable for a wide range of applications
Quality and Safety Features
AEC-Q100 qualified
Robust MEMS-based resonator design
Comprehensive quality control and testing procedures
Compatibility
The DSC1001DI5-060.0000T is compatible with various electronic systems and devices that require a stable clock signal, including:
Automotive electronics
Industrial control systems
Telecommunication equipment
Consumer electronics
Application Areas
Automotive electronics
Industrial automation and control
Telecommunications
Consumer electronics
Embedded systems
Product Lifecycle
The DSC1001DI5-060.0000T is an active and currently available product. There are no plans for discontinuation at this time. While there may be equivalent or alternative models available from various manufacturers, customers are advised to contact our website's sales team for the most up-to-date information on product availability and suitability for their specific applications.