Resonators

Image Part Number Description / PDF Quantity Rfq
CSTNE16M9V530000R0

CSTNE16M9V530000R0

TOKO / Murata

CER RES

0

CSTLS8M46G53-A0

CSTLS8M46G53-A0

TOKO / Murata

CER RESONATOR

0

CSTCR7M99G55-R0

CSTCR7M99G55-R0

TOKO / Murata

CER RESONATOR

0

CSTCR5M32G55-R0

CSTCR5M32G55-R0

TOKO / Murata

CER RESONATOR

0

CSTLS9M83G56-B0

CSTLS9M83G56-B0

TOKO / Murata

CER RESONATOR

2000

CSTCR4M16G55001-R0

CSTCR4M16G55001-R0

TOKO / Murata

CER RES

3000

CSTCR7M30G53-R0

CSTCR7M30G53-R0

TOKO / Murata

CER RESONATOR

0

CSTLS3M64G53-A0

CSTLS3M64G53-A0

TOKO / Murata

CER RESONATOR

4000

CSTCR4M25G53-R0

CSTCR4M25G53-R0

TOKO / Murata

CER RES

3000

CSTCR4M91G55Z-R0

CSTCR4M91G55Z-R0

TOKO / Murata

CER RES

0

CSTLS16M0X53Z-A0

CSTLS16M0X53Z-A0

TOKO / Murata

16.0MHZ CERAMIC RESONATOR (CERAL

2000

CSTNE13M0G55A000R0

CSTNE13M0G55A000R0

TOKO / Murata

CER RES

0

CSTCR7M38G53-R0

CSTCR7M38G53-R0

TOKO / Murata

CER RESONATOR

0

CSTNE16M0V53L00ZR0

CSTNE16M0V53L00ZR0

TOKO / Murata

3.2X1.3MM 16.0MHZ CERAMIC RESONA

2125

CSTCR6M29G55B-R0

CSTCR6M29G55B-R0

TOKO / Murata

CER RESONATOR

3000

CSTCR6M40G55B-R0

CSTCR6M40G55B-R0

TOKO / Murata

CER RESONATOR

0

CSTNR5M00GH5C000R0

CSTNR5M00GH5C000R0

TOKO / Murata

CER RES

0

CSTNE14M0V530000R0

CSTNE14M0V530000R0

TOKO / Murata

CER RES

0

CSTNE16M6V530000R0

CSTNE16M6V530000R0

TOKO / Murata

CER RES

0

CSTCR7M96G55B-R0

CSTCR7M96G55B-R0

TOKO / Murata

CER RESONATOR

0

Resonators

1. Overview

Resonators are passive electronic components that generate stable frequencies by utilizing the mechanical resonance of piezoelectric materials (e.g., quartz, ceramic) or surface acoustic waves (SAW). They are critical for timing, frequency control, and signal processing in modern electronics. Oscillators integrate resonators with active circuitry to produce periodic signals, while crystals refer to raw piezoelectric elements. These components ensure synchronization and reliability in communication systems, industrial equipment, and consumer devices.

2. Main Types and Functional Classification

TypeFunction FeaturesApplications
Quartz Crystal ResonatorsHigh Q-factor, excellent temperature stabilityMicroprocessors, GPS modules
Ceramic ResonatorsLower cost, moderate stabilityRemote controls, IoT sensors
SAW ResonatorsHigh-frequency operation (GHz range), compact size5G base stations, automotive radar
MEMS ResonatorsMiniaturized, temperature-compensatedWearables, medical implants

3. Structure and Composition

A typical resonator includes: - Piezoelectric Material: Quartz (for crystal resonators) or ceramic (for ceramic resonators) that vibrates under electric fields. - Electrodes: Metal coatings (e.g., silver, gold) to apply voltage and detect vibrations. - Encapsulation: Metal or ceramic housing to protect against environmental factors. - SAW Resonators: Feature interdigital transducers (IDTs) on piezoelectric substrates (e.g., lithium niobate) to generate surface acoustic waves.

4. Key Technical Parameters

ParameterDescription & Importance
Frequency ToleranceDeviation from nominal frequency ( ppm), critical for system synchronization
Q-FactorQuality factor indicating energy loss; higher Q ensures better frequency selectivity
Temperature StabilityFrequency drift per C (e.g., 30 ppm/ C), vital for harsh environments
Equivalent Series Resistance (ESR)Affects oscillator startup time and signal purity
Load CapacitanceRequired for tuning in oscillator circuits

5. Application Fields

  • Telecommunications: 5G transceivers, fiber-optic networks
  • Automotive: Engine control units (ECUs), tire pressure sensors
  • Consumer Electronics: Smartphones, smartwatches
  • Industrial: PLCs, precision sensors
  • Medical: Pacemakers, ultrasound imaging devices

6. Leading Manufacturers and Products

ManufacturerRepresentative Products
Murata ManufacturingCSTCE Series Ceramic Resonators
TDK CorporationFK1610 Series MEMS Oscillators
Epson ElectronicsSG-8003 Series Crystal Oscillators
Sitime CorporationSIM3-Series Automotive MEMS Resonators
KyoceraDF23SA Series SAW Filters

7. Selection Guidelines

Consider the following factors when choosing resonators: - Frequency Requirements: Match tolerance and stability to application needs. - Environmental Conditions: High-temperature stability for automotive or industrial use. - Size Constraints: MEMS resonators for miniaturized designs. - Cost vs. Performance: Ceramic resonators for budget-sensitive projects with relaxed stability needs. - Integration: Ensure compatibility with oscillator circuit design (e.g., load capacitance).

8. Industry Trends

Future developments include: - Micromachining: MEMS resonators achieving higher stability and shock resistance. - Higher Frequencies: Demand for sub-6GHz and mmWave SAW resonators in 5G. - Low-Power Solutions: Optimization for IoT and wearable devices. - AI Integration: Self-adjusting resonators using machine learning for dynamic environments. - Material Innovation: Use of aluminum nitride (AlN) and gallium nitride (GaN) for improved thermal performance.

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