RF Filters

Image Part Number Description / PDF Quantity Rfq
DEA162500LT-1217A1

DEA162500LT-1217A1

TDK Corporation

RF FILTER LOW PASS 2.45GHZ 0603

2537

DEA252450BT-2031A1

DEA252450BT-2031A1

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 1008

1720

DEA162450BT-2174A1

DEA162450BT-2174A1

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 0603

3644

DEA255787BT-2044A1

DEA255787BT-2044A1

TDK Corporation

RF FILTR BANDPASS 5.7875GHZ 1008

4410

DEA161990LT-1182A8

DEA161990LT-1182A8

TDK Corporation

RF FILTER LOW PASS 1.85GHZ 0603

98

DEA252450BT-2024C2

DEA252450BT-2024C2

TDK Corporation

RF FILTER BAND PASS 2.44GHZ 1008

2455

DEA162600BT-1258C2

DEA162600BT-1258C2

TDK Corporation

RF FILTER BAND PASS 2.6GHZ 0603

2708

DEA202025LT-5052C1

DEA202025LT-5052C1

TDK Corporation

RF FILTER LOW PASS MULT LAY 0805

3233

DEA165363BT-2124A3

DEA165363BT-2124A3

TDK Corporation

RF FILTR BANDPASS 5.3625GHZ 0603

4475

DEA252450BT-2027A1

DEA252450BT-2027A1

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 1008

7160

DEA252450BT-7022B1

DEA252450BT-7022B1

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 1008

3392

DEA252450BT-7035B2

DEA252450BT-7035B2

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 1008

0

DEA162450BT-1298A1

DEA162450BT-1298A1

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 0603

2133

DEA162450BT-1262B1

DEA162450BT-1262B1

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 0603

954

DEA102025LT-6313A1

DEA102025LT-6313A1

TDK Corporation

RF FILTER LOW PASS 1.9GHZ 0402

9408

DEA203600BT-7127E3

DEA203600BT-7127E3

TDK Corporation

RF FILTER BALANCE 3.6GHZ 0805

1848

DEA160960LT-1169AA

DEA160960LT-1169AA

TDK Corporation

RF FILTER LOW PASS 892MHZ 0603

8783

DEA202450BT-7116E1

DEA202450BT-7116E1

TDK Corporation

RF FILTER BALANCE 2.45GHZ 0805

1866

DEA202450BT-1283A2

DEA202450BT-1283A2

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 0805

200

DEA162450BT-2181D1

DEA162450BT-2181D1

TDK Corporation

RF FILTER BAND PASS 2.45GHZ 0603

975

RF Filters

1. Overview

RF Filters are passive components that selectively allow or block specific frequency ranges in radio frequency (RF) systems. They are critical for signal integrity in wireless communication by eliminating interference, enhancing signal clarity, and ensuring compliance with regulatory standards. Modern applications include 5G networks, Wi-Fi systems, radar, and IoT devices.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Bandpass FilterAllows frequencies within a specific rangeCellular base stations, Wi-Fi routers
Low-pass FilterPasses frequencies below cutoff frequencyPower amplifiers, GPS systems
High-pass FilterAttenuates frequencies below cutoff frequencySatellite communication systems
Band-reject FilterBlocks specific frequency bandsMedical imaging equipment
SAW FilterUses surface acoustic waves for precise filteringSmartphones, automotive radar
BAW FilterEmploys bulk acoustic resonators for high-frequency operation5G mmWave devices, WLAN modules
Cavity FilterMetallic resonant cavities for high Q-factorRadio astronomy, military communication

3. Structure and Components

Typical RF filter structures include:

  • Resonant Elements: Determine passband frequencies (e.g., quartz crystals in SAW filters)
  • Transmission Lines: Microstrip or coplanar waveguides for signal propagation
  • Dielectric Materials: Substrates like alumina or LTCC for impedance control
  • Enclosure: Metal housing for EMI shielding (cavity filters) or surface-mount packages
  • Ports: Input/output connectors (SMA, N-type) or PCB pads

Advanced designs integrate MEMS tuning mechanisms or LTCC multilayer structures for miniaturization.

4. Key Technical Specifications

ParameterDescriptionImportance
Frequency RangeOperational bandwidth (e.g., 2.4-2.5 GHz)Determines application compatibility
Insertion LossSignal attenuation in passband (e.g., <1.5 dB)Impacts system sensitivity
Bandwidth (3dB)Passband width at half-power pointsDefines frequency selectivity
Rejection RatioStopband attenuation level (e.g., >40 dB)Interference suppression capability
Power HandlingMaximum input power (e.g., 20W CW)Prevents component damage
Temperature StabilityFrequency drift vs temperature (e.g., 50 ppm/ C)Ensures operational reliability

5. Application Fields

  • Telecommunications: 5G NR base stations, fiber optic networks
  • Aerospace: Avionics navigation systems, satellite transponders
  • Medical: MRI RF coils, ultrasound imaging equipment
  • Automotive: V2X communication modules, 77GHz radar systems
  • Industrial: Wireless sensor networks, RFID readers

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
Murata ManufacturingSAWLF5G30D3.3-4.2 GHz BAW filter for 5G
QorvoQPM25152.3-2.7 GHz bandpass filter, 100W power rating
Skyworks SolutionsSKY13460DC-6 GHz SPDT switch with integrated filters
Mini-CircuitsBFCN-1100+Cavity filter with 1050-1300 MHz range
TE ConnectivityRFHF35-2.92MHigh-frequency coaxial filter up to 40 GHz

7. Selection Guidelines

Key considerations:

  1. Frequency Requirements: Match passband with system operating bands
  2. Power Handling: Ensure ratings exceed maximum system power
  3. Environmental Conditions: Temperature (-40 to +85 C), humidity resistance
  4. Form Factor: SMD for compact designs vs. coaxial for high-power applications
  5. Cost vs. Performance: Trade-off between ceramic filters (low-cost) and cavity filters (high-stability)

Case Study: Selecting a BAW filter for 5G mmWave devices requires <0.5 dB insertion loss, 28 GHz operation, and compliance with 3GPP TS 38.141-1 standards.

8. Industry Trends and Future Outlook

Key development trends:

  • Higher Frequency Operation: mmWave filters for 5G/6G (24-100 GHz) using photonic bandgap structures
  • Miniaturization: Wafer-level packaging reducing SAW filter size to 0.4x0.2 mm
  • Integrated Solutions: Filter+LNA modules for IoT devices (e.g., Qorvo's QM33013)
  • Advanced Materials: Lithium niobate on silicon (LiNoSi) substrates improving temperature stability
  • Software-Defined Radio: Tunable RF filters with MEMS or ferroelectric materials

The market is projected to grow at 9.8% CAGR (2023-2030), driven by automotive radar and satellite internet demand.

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