Oscillators

Image Part Number Description / PDF Quantity Rfq
TSM21-H50CQ33ST-10.000M

TSM21-H50CQ33ST-10.000M

Transko

10MHZ XTAL OSC CERAMIC SMD

806

TSM32-H50CQ33ST-27.000M

TSM32-H50CQ33ST-27.000M

Transko

27MHZ XTAL OSC CERAMIC SMD

0

TSM32-H50CQ33ST-50.000M-TR

TSM32-H50CQ33ST-50.000M-TR

Transko

50MHZ XTAL OSC CERAMIC SMD

0

TSM75-H00HM33RT-8.000M

TSM75-H00HM33RT-8.000M

Transko

8MHZ XTAL OSC CERAMIC SMD

1000

TSM75-H15HM33RT-24.576M

TSM75-H15HM33RT-24.576M

Transko

24.576MHZ XTAL OSC CERAMIC SMD

0

TSM21-H50HQ18ST-40.000M

TSM21-H50HQ18ST-40.000M

Transko

40MHZ XTAL OSC CERAMIC SMD

700

TSM53-H50CQ33ST-24.576M-TR

TSM53-H50CQ33ST-24.576M-TR

Transko

24.576MHZ XTAL OSC CERAMIC SMD

16000

TSM75-H25HM50RT-2.048M

TSM75-H25HM50RT-2.048M

Transko

2.048MHZ XTAL OSC CERAMIC SMD

200

TSM32-H25CQ18ST-40.000M-TR

TSM32-H25CQ18ST-40.000M-TR

Transko

40MHZ XTAL OSC CERAMIC SMD

1000

TSM75-H50CQ33ST-125.000M

TSM75-H50CQ33ST-125.000M

Transko

125MHZ XTAL OSC CERAMIC SMD

36

TSM53-H50CQ33ST-50.000M

TSM53-H50CQ33ST-50.000M

Transko

50MHZ XTAL OSC CERAMIC SMD

405

TSM32-H00HU10RT-37.400M

TSM32-H00HU10RT-37.400M

Transko

37.4MHZ XTAL OSC CERAMIC SMD

150

TSM75-H50CQ33ST-1.8432M

TSM75-H50CQ33ST-1.8432M

Transko

1.8432MHZ XTAL OSC CERAMIC SMD

1000

TSM32-H50HM33ST-2.048M

TSM32-H50HM33ST-2.048M

Transko

2.048MHZ XTAL OSC CERAMIC SMD

1000

TSM75-H25FM18ST-40.000M

TSM75-H25FM18ST-40.000M

Transko

40MHZ XTAL OSC CERAMIC SMD

859

TSM32-H50CQ33ST-18.432M

TSM32-H50CQ33ST-18.432M

Transko

18.432MHZ XTAL OSC CERAMIC SMD

103

TSM75-H50CQ33ST-12.288M

TSM75-H50CQ33ST-12.288M

Transko

12.288MHZ XTAL OSC CERAMIC SMD

0

TSM53-H30HM33ST-12.352M

TSM53-H30HM33ST-12.352M

Transko

12.352MHZ XTAL OSC CERAMIC SMD

1000

TSM32-H50CQ33ST-20.000M

TSM32-H50CQ33ST-20.000M

Transko

20MHZ XTAL OSC CERAMIC SMD

1000

TSM75-20FM33SN-62.208M

TSM75-20FM33SN-62.208M

Transko

62.208MHZ XTAL OSC CERAMIC SMD

330

Oscillators

1. Overview

Oscillators are electronic components that generate stable periodic signals, serving as frequency references in electronic systems. Crystals and resonators are core elements that determine frequency stability through mechanical vibration. These components are critical in modern technology for ensuring synchronization, timing accuracy, and signal integrity in applications ranging from consumer electronics to aerospace systems.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Crystal Oscillator (XO)Fixed frequency output, high stabilityMicrocontrollers, clocks
Voltage-Controlled Crystal Oscillator (VCXO)Frequency adjustable via control voltageTelecom networks, phase-locked loops
Temperature-Compensated Crystal Oscillator (TCXO)Integrated temperature compensation circuitGPS devices, mobile phones
Oven-Controlled Crystal Oscillator (OCXO)Heated enclosure for ultra-high stabilityTest equipment, military radar
Microwave ResonatorHigh-frequency operation using dielectric materials5G base stations, satellite communication

3. Structure and Components

A typical oscillator consists of:

  • Crystal unit (quartz or ceramic resonator)
  • Amplification circuit (transistor/IC)
  • Feedback network (LC/pi-filter)
  • Power supply regulation
  • Metal/ceramic hermetic enclosure
Quartz crystals are cut in AT or SC configurations for optimal temperature response. Advanced packages integrate phase noise reduction circuitry and digital control interfaces.

4. Key Technical Specifications

ParameterDescriptionImportance
Frequency RangeOperational frequency band (kHz to GHz)Determines application suitability
Stability (ppm)Frequency deviation over temperature/timeSystem reliability indicator
Phase NoiseShort-term frequency fluctuations (dBc/Hz)Critical for RF communication
Start-up TimeTime to reach stable oscillationPower-sensitive applications
Operating TemperatureFunctional temperature rangeEnvironmental adaptability

5. Application Fields

  • Telecommunications: 5G base stations, optical transceivers
  • Consumer Electronics: Smartphones, wearables
  • Automotive: ADAS sensors, engine control units (ECUs)
  • Industrial: Test equipment, precision sensors
  • Aerospace: Satellite navigation systems, flight computers

Case Study

The SiTime SiT5358 MEMS oscillator ( 0.1ppm stability) enables 5G small cells to maintain synchronization within 1588v2 standards. Compared to traditional TCXO solutions, it reduces holdover drift by 80% while maintaining better vibration resistance.

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Specifications
EpsonTG-550032.768kHz TCXO, 0.03ppm stability
SiTimeSiT89240.1ppm MEMS oscillator with 70MHz output
TXC Corporation7B-26.000MAAJ26MHz VCXO for Bluetooth modules
CrystekCFOV-950-100.000100MHz OCXO with -145dBc/Hz phase noise

7. Selection Guidelines

  • Determine frequency requirements (fundamental vs overtone mode)
  • Evaluate stability needs (temperature range, aging tolerance)
  • Assess phase noise requirements (critical for high-speed ADC/DAC)
  • Consider package size (common: 2016, 3225, 5032)
  • Verify power consumption (important for IoT devices)
  • Select appropriate compensation method (TCXO vs OCXO)

8. Industry Trends

Key developments include:

  • MEMS oscillators replacing quartz in high-vibration environments
  • Integration of digital control (I2C programmable oscillators)
  • Development of sub-ppm stability at consumer price points
  • Miniaturization to meet wearable device demands
  • Increased adoption of differential output formats (LVPECL, HCSL)
The market is projected to grow at 6.8% CAGR through 2028, driven by 5G infrastructure and automotive electronics demand.

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