GSX-333 High-Frequency Crystal for Precision Performance

Golledge Electronics GSX-333 high-frequency crystals are ideal for space-constrained designs without sacrificing performance

Image of Golledge Electronics GSX-333 High-Frequency Crystal for Precision PerformanceGolledge Electronics GSX-333 delivers exceptional stability and accuracy in a compact 3.2 mm x 2.5 mm package. This crystal resonator, engineered with cutting-edge technology, is designed to meet the stringent demands of today’s high-frequency applications. Whether developing high-speed communication systems, industrial equipment, or advanced IoT devices, the GSX-333 provides unparalleled performance in environments that require absolute precision.

The GSX-333 covers a wide frequency range from 8.0 MHz to 70.0 MHz, operating in fundamental mode and providing versatility across various applications. It achieves tight frequency tolerance as low as ±7.5 ppm and temperature stability of ±7.5 ppm, ensuring reliability under all operating conditions. With a footprint of only 3.0 mm x 2.5 mm, the GSX-333 is perfect for space-constrained designs without sacrificing performance. It has an operating temperature range of -40°C to +85°C, making it ideal for harsh industrial environments and outdoor applications. It features a low equivalent series resistance (ESR), offering improved performance and lower power consumption.

The GSX-333 crystal combines high-frequency capability, compact size, industry-standard footprint, competitive pricing, and robust performance to make it an ideal choice for engineers looking for reliability and precision in demanding environments.

Key Specifications
  • Frequency range: 8.0 MHz to 70.0 MHz
  • Tolerance: ±7.5 ppm
  • Stability: ±7.5 ppm
  • Temperature range: -40°C to +85°C
  • Package size: 3.2 mm x 2.5mm
  • ESR: 50 Ω to 100 Ω (depending on frequency)
Applications
  • Wireless communication systems
  • Industrial IoT (IIoT)
  • Automotive electronics
  • Medical devices
  • Network infrastructure equipment
  • GPS and positioning systems
Published: 2024-12-02