Programmable Oscillators

Image Part Number Description / PDF Quantity Rfq
CPPLC7-LT0PT

CPPLC7-LT0PT

Cardinal Components

OSC PROG CMOS 3.3V 50PPM EN/DS

0

CPPLC7-HZ76P

CPPLC7-HZ76P

Cardinal Components

OSC PROG CMOS 5V 100PPM STBY

0

CPPLC5-LT56P

CPPLC5-LT56P

Cardinal Components

OSC PROG CMOS 3.3V 100PPM STBY

1533

CPPLC1-HT5PT

CPPLC1-HT5PT

Cardinal Components

OSC PROG CMOS 5V 50PPM EN/DS

161

CPPT7-LZ0PT

CPPT7-LZ0PT

Cardinal Components

OSC PROG TTL 3.3V 50PPM EN/DS

0

CPPLT1-HT06P

CPPLT1-HT06P

Cardinal Components

OSC PROG TTL 5V 100PPM STBY

161

CPPT7-HT5PP

CPPT7-HT5PP

Cardinal Components

OSC PROG TTL 5V 50PPM STBY SMD

0

CPPLT7-HZ7PT

CPPLT7-HZ7PT

Cardinal Components

OSC PROG TTL 5V 50PPM EN/DS

0

CPPLC5-HT5PT

CPPLC5-HT5PT

Cardinal Components

OSC PROG CMOS 5V 50PPM EN/DS

1533

CPPT7-LZ0RT

CPPT7-LZ0RT

Cardinal Components

OSC PROG TTL 3.3V 25PPM EN/DS

0

CPPLX5-A7BRNP

CPPLX5-A7BRNP

Cardinal Components

XTAL OSC PROG BLANK 1MHZ-133MHZ

4599

CPPT7-LT5PT

CPPT7-LT5PT

Cardinal Components

OSC PROG TTL 3.3V 50PPM EN/DS

0

CPPT7-LZ7PT

CPPT7-LZ7PT

Cardinal Components

OSC PROG TTL 3.3V 50PPM EN/DS

0

CPPLC1-LT0PT

CPPLC1-LT0PT

Cardinal Components

OSC PROG CMOS 3.3V 50PPM EN/DS

161

CPPC7-LT0RP

CPPC7-LT0RP

Cardinal Components

OSC PROG CMOS 3.3V 25PPM STBY

0

CPPLC5-HT7PP

CPPLC5-HT7PP

Cardinal Components

OSC PROG CMOS 5V 50PPM STBY

1533

CPPT7-LZ5RP

CPPT7-LZ5RP

Cardinal Components

OSC PROG TTL 3.3V 25PPM STBY

0

CPPLT4-HT56P

CPPLT4-HT56P

Cardinal Components

OSC PROG TTL 5V 100PPM STBY

256

CPPLC7-HZ5PT

CPPLC7-HZ5PT

Cardinal Components

OSC PROG CMOS 5V 50PPM EN/DS

0

CPPLT4-LT7PT

CPPLT4-LT7PT

Cardinal Components

OSC PROG TTL 3.3V 50PPM EN/DS

256

Programmable Oscillators

1. Overview

Programmable oscillators are frequency generation devices that allow dynamic adjustment of output frequency through digital control. Unlike fixed-frequency crystals or resonators, these oscillators use phase-locked loop (PLL) circuits or direct digital synthesis (DDS) to achieve precise frequency tuning. Their adaptability makes them critical components in modern communication systems, industrial automation, and high-speed computing equipment where frequency agility and phase noise optimization are required.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Phase-Locked Loop (PLL) OscillatorsFrequency synthesis through feedback control, offers high stabilityWireless base stations, frequency converters
Direct Digital Synthesis (DDS)Programmable frequency resolution down to micro-Hertz levelsTest equipment, medical imaging systems
Temperature-Compensated Oscillators (TCXO)Embedded temperature sensors for stability in varying environmentsGPS receivers, automotive navigation systems
Voltage-Controlled Crystal Oscillators (VCXO)Analog frequency adjustment via control voltageTelecom transceivers, precision timing devices

3. Structure and Components

Typical programmable oscillator architecture includes: 1) Quartz crystal or MEMS resonator for base frequency reference 2) PLL/DDS circuit with programmable dividers 3) Digital control interface (I2C/SPI) 4) Voltage-controlled oscillator core 5) Output buffer amplifier 6) Temperature compensation module (for TCXO variants) Advanced packages integrate EEPROM for storing configuration profiles and phase noise optimization algorithms.

4. Key Technical Specifications

ParameterImportanceTypical Values
Frequency RangeDetermines application suitability10 MHz - 1.5 GHz
Phase NoiseCritical for signal integrity-150 to -165 dBc/Hz @ 1kHz offset
Tuning ResolutionAffects precision capability0.1 Hz - 10 kHz
Power ConsumptionKey for portable devices50-300 mA
Temperature StabilityImpacts long-term reliability 0.5 to 2.5 ppm
Startup TimeDetermines system response speed1-10 ms

5. Application Fields

  • Telecommunications: 5G base stations, optical transceivers
  • Automotive: ADAS radar systems, V2X communication modules
  • Industrial: Precision test equipment, robotics controllers
  • Consumer Electronics: High-end audio clocks, gaming peripherals
  • Aerospace: Satellite communication terminals, navigation systems

6. Leading Manufacturers and Products

ManufacturerProduct SeriesKey Features
SiTimeSiT8924MEMS-based, 20 ppm stability, 10-110 MHz range
Texas InstrumentsLMX259415 GHz PLL with integrated VCO, <35 fs jitter
Analog DevicesAD9914125 MHz DDS with 48-bit tuning word
STMicroelectronicsVL53L3CXTime-of-flight sensor with integrated oscillator

7. Selection Guidelines

  1. Define required frequency range and tuning step
  2. Assess phase noise requirements based on system SNR targets
  3. Consider environmental operating conditions (temperature, vibration)
  4. Evaluate interface compatibility (I2C/SPI vs analog control)
  5. Analyze power budget constraints
  6. Check package size and PCB integration requirements
  7. Verify long-term stability specifications for mission-critical applications

8. Industry Trends

Key development directions include: - Integration of AI-based frequency prediction algorithms - MEMS resonator adoption enabling higher shock resistance - Sub-100 femtosecond jitter performance through advanced PLL architectures - System-on-Chip (SoC) integration reducing external component requirements - Expansion into millimeter-wave frequency bands (above 30 GHz) - Energy harvesting capabilities for IoT applications

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