Monolithic Crystals

Image Part Number Description / PDF Quantity Rfq
XDCAG38M850PGA00P0

XDCAG38M850PGA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 38.85M

3000

XDCAE50M000HHA01P0

XDCAE50M000HHA01P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 50MHZ

2996

XDCAF21M400RAA00P0

XDCAF21M400RAA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 21.4MH

3000

XDCAH25M000EHA01P0

XDCAH25M000EHA01P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 25MHZ

0

XDCAH73M350QHA03P0

XDCAH73M350QHA03P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 73.35M

2966

XDCAH50M850PHA00P0

XDCAH50M850PHA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 50.85M

2982

XDCAG49M950PGA00P0

XDCAG49M950PGA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 49.95M

3000

XDCAG51M650PGA00P0

XDCAG51M650PGA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 51.65M

3000

XDCAF21M700MAA00P0

XDCAF21M700MAA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 21.7MH

3000

XDCAG46M350PGA00P0

XDCAG46M350PGA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 46.35M

3000

XDCAG58M050MGA00P0

XDCAG58M050MGA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 58.05M

2996

XDCAG45M000RGA00P0

XDCAG45M000RGA00P0

TOKO / Murata

MONOLITHIC CRYSTAL FILTER 45MHZ

2686

Monolithic Crystals

1. Overview

Monolithic crystals are integrated resonant devices fabricated from single-crystal materials, primarily used for signal filtering and frequency stabilization in electronic systems. Unlike discrete crystal components, these monolithic structures combine multiple resonators or filters on a single substrate, enabling compact designs with high performance. Their ability to achieve precise frequency control, low insertion loss, and excellent temperature stability makes them critical in modern communication systems, precision instrumentation, and automotive electronics.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
SAW (Surface Acoustic Wave) FiltersUtilize surface acoustic waves on piezoelectric substrates; low cost, moderate Q-factorMobile phones, Wi-Fi modules, TV tuners
BAW (Bulk Acoustic Wave) FiltersOperate with bulk waves; high Q-factor, suitable for frequencies >2 GHz5G base stations, automotive radar sensors
Crystal Ladder FiltersQuartz-based monolithic structures; ultra-stable frequency responseHigh-precision oscillators, medical imaging equipment

3. Structure and Composition

A typical monolithic crystal device consists of:

  • Piezoelectric Substrate: Lithium Niobate (LiNbO3), Quartz, or Aluminum Nitride (AlN) layers
  • Interdigital Transducers (IDTs): Aluminum or Copper electrodes patterned via photolithography
  • Encapsulation Layer: Silicon dioxide or polymer coatings for environmental protection
  • Electrical Contacts: Gold or Silver terminals for PCB integration
For example, BAW filters employ a Bragg reflector stack beneath the resonator to confine acoustic energy vertically.

4. Key Technical Specifications

ParameterTypical RangeSignificance
Passband Frequency100 MHz - 12 GHzDetermines application suitability
Insertion Loss0.5 - 3.0 dBImpacts signal strength
Bandwidth (3dB)0.1% - 5% of center frequencyDefines filtering precision
Q Factor500 - 10,000Indicates resonance sharpness
Temperature Drift 5 to 50 ppm/ CAffects stability in varying environments

5. Application Fields

Key industries include:

  • Telecommunications: Base station duplexers, smartphone front-end modules
  • Automotive: 77 GHz mmWave radar systems
  • Medical: Ultrasound Doppler signal processing
  • Industrial: Non-destructive testing equipment
Case Study: In 5G NR systems, BAW-based monolithic filters enable simultaneous sub-6 GHz and mmWave band operation with minimal cross-interference.

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Specification
Murata ManufacturingSAWLF5G12003.5 GHz passband, 1.2 dB insertion loss
QorvoTC-SAW Filter BAW11175G NR Band n78 compliant, 2.6 GHz
Maxim IntegratedDS1845 Crystal Filter10 MHz reference with 3 ppm stability

7. Selection Guidelines

Key considerations:

  1. Frequency Requirements: Match passband with system operating range
  2. Environmental Conditions: Temperature-stable crystals for automotive applications
  3. Integration Constraints: Miniaturized packages (e.g., LGA) for mobile devices
  4. Cost vs. Performance: SAW for budget-sensitive IoT devices, BAW for high-frequency 5G infrastructure
Always validate performance across the entire operating temperature range (-40 C to +85 C).

8. Industry Trends

Future development focuses on:

  • Higher Frequency Bands: Research into terahertz (THz) monolithic filters for 6G
  • Advanced Packaging: 3D integration with CMOS circuits
  • New Materials: Adoption of Lithium Tantalate (LiTaO3) for improved temperature coefficients
  • AI-Driven Design: Machine learning optimization of IDT geometries for customized frequency responses
The global market is projected to grow at 9.2% CAGR through 2030, driven by 5G expansion and automotive ADAS adoption.

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