Ceramic Filters

Image Part Number Description / PDF Quantity Rfq
CER0813A

CER0813A

CTS Corporation

CER FILTER 4GHZ BAND PASS

0

CER0001A

CER0001A

CTS Corporation

CER FILTER 836.5MHZ BAND PASS

0

CER0284B

CER0284B

CTS Corporation

CER FILTER BAND PASS

0

KFF6401A

KFF6401A

CTS Corporation

CER FILTER BAND PASS

0

CER0232C

CER0232C

CTS Corporation

CER FILTER 902.5MHZ BAND PASS

0

CER0738A

CER0738A

CTS Corporation

CERAMIC FILTER

0

KFF6193A

KFF6193A

CTS Corporation

CER FILTER 915MHZ FM

0

CER0312A

CER0312A

CTS Corporation

CER FILTER 3.55GHZ BAND PASS

0

CER0239A

CER0239A

CTS Corporation

CER FILTER 947.5MHZ BAND PASS

0

CER0238A

CER0238A

CTS Corporation

CER FILTER 902.5MHZ BAND PASS

0

CER0605A

CER0605A

CTS Corporation

CER FILTER 938MHZ BAND PASS

0

CER0574A

CER0574A

CTS Corporation

CERAMIC FILTER

0

CER0688A

CER0688A

CTS Corporation

CER FILTER BAND PASS

0

CER0405B

CER0405B

CTS Corporation

CER FILTER BAND PASS

0

CER0787B

CER0787B

CTS Corporation

CERAMIC FILTER

0

KFF6686A

KFF6686A

CTS Corporation

CERAMIC FILTER

0

CER0235A

CER0235A

CTS Corporation

CER FILTER 942.5MHZ BAND PASS

0

CER0369A

CER0369A

CTS Corporation

CER FILTER 5.375GHZ BAND PASS

0

CER0548B

CER0548B

CTS Corporation

CER FILTER BAND PASS

0

CER0005A

CER0005A

CTS Corporation

CER FILTER 1.5749GHZ BAND PASS

0

Ceramic Filters

1. Overview

Ceramic filters are electronic components utilizing ceramic materials' dielectric or piezoelectric properties to selectively pass or reject specific frequency bands. Their high Q-factor, compact size, and temperature stability make them critical in RF/microwave signal processing systems. Modern wireless communication, IoT devices, and industrial sensors rely on ceramic filters for signal integrity and interference suppression.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Dielectric Ceramic FiltersHigh permittivity, low loss tangent, suitable for GHz-range filtering5G base stations, WLAN routers
Piezoelectric Ceramic FiltersConvert electrical/mechanical energy, precise frequency controlUltrasonic cleaners, medical imaging
Monolithic Ceramic FiltersIntegrated multilayer structure, wide bandwidthAutomotive radar, GPS modules
LTCC FiltersLow-temperature co-fired ceramic, multilayer integrationSmartphones, wearable devices

3. Structure and Composition

Typical ceramic filter structures include:

  • Ceramic substrate: Alumina (Al O ), Zirconia (ZrO ), or Titanate materials
  • Conductive elements: Silver/palladium electrodes with precise patterning
  • Encapsulation: Epoxy or metal housing for environmental protection
  • Temperature compensation: Special dopants to stabilize frequency drift

Cross-sectional design optimizes electromagnetic field distribution through resonator coupling.

4. Key Technical Specifications

ParameterDescriptionImportance
Frequency RangeOperational bandwidth (MHz-GHz)Determines application suitability
Insertion LossSignal attenuation in passband (0.5-5 dB)Impacts system sensitivity
Bandwidth (BW)3dB bandwidth (1-1000 MHz)Defines frequency selectivity
Temperature Stability 50 ppm/ C typicalEnsures operational reliability
Power Handling1-100 W maximumLimits in high-power applications

5. Application Fields

Major application areas:

  • Telecommunications: 5G NR filters, Wi-Fi 6E front-end modules
  • Automotive: 77GHz millimeter-wave radar systems
  • Medical: MRI machine RF coils and ultrasound probes
  • Industrial: Wireless sensor networks for predictive maintenance

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
Murata ManufacturingNFU087HC Series0.6-6.0 GHz, 1.0dB insertion loss
TDK CorporationCKF1010 SeriesGPS L1/L2 dual-band filtering
Kemet ElectronicsKC_LF SeriesLTCC technology for IoT devices
Qorvo Inc.QM780035G massive MIMO filter array

7. Selection Guidelines

Key selection factors:

  1. Match frequency specifications with system requirements
  2. Evaluate power handling in high-power applications
  3. Consider temperature stability for harsh environments
  4. Verify packaging compatibility (SMD/BGA/connectorized)
  5. Assess cost-performance balance for volume production

8. Industry Trends

Emerging trends include:

  • Sub-6GHz and mmWave filter development for 6G
  • AI-driven filter design optimization
  • Nano-ceramic materials for higher Q-factors (Q>10,000)
  • Integration with antenna systems (Antenna-in-Package)
  • Environmental compliance (RoHS, REACH)

Market forecasts predict 8.2% CAGR through 2030, driven by 5G infrastructure and automotive radar demand.

RFQ BOM Call Skype Email
Top