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Published on: February 4, 2018
Split-Type Multiband Filter Design Using Ultra-Miniaturized Substrate-Integrated Coaxial Cavities
Ming-Chih Chen1, Ci-Fang Jheng2, Gawn-Wei Su3
1AI Development Center and Graduate Institute of Business Administration, Fu Jen Catholic University, New Taipei City 242062, Taiwan.
Micromachines
|July 28, 2026
Summary
This study introduces novel split-type dual- and tri-band bandpass filters using miniaturized substrate-integrated coaxial cavities (SICCs). These filters offer high circuit-area efficiency and validated performance for advanced electronic applications.
Area of Science:
- Electrical Engineering
- Electromagnetics
- Microwave Engineering
Background:
- Multiband filters are crucial for modern wireless communication systems.
- Existing designs often face challenges with miniaturization and circuit-area efficiency.
- Substrate-Integrated Waveguide (SIW) technology offers a planar solution for filter fabrication.
Purpose of the Study:
- To design and experimentally validate split-type dual- and tri-band bandpass filters (BPFs).
- To achieve exceptional circuit-area efficiency using highly miniaturized substrate-integrated coaxial cavities (SICCs).
- To explore the fabrication of size-reduced SICCs using substrates of different thicknesses.
Main Methods:
- Employing the coupling matrix method for synthesizing filter responses.
- Designing and fabricating miniaturized SICCs using dual-thickness substrates.
- Utilizing substrate-integrated waveguide (SIW) related split-type filter topology.
Main Results:
- A dual-band filter achieved a circuit size of 0.17 λd × 0.17 λd with insertion losses of 0.78/0.89 dB and >15 dB isolation.
- A tri-band filter occupied 0.27 λd × 0.34 λd with insertion losses of 0.96, 2.6, and 1.21 dB.
- Experimental validation confirmed strong agreement between measured and simulated filter performance.
Conclusions:
- The proposed split-type multiband filter design demonstrates superior circuit-area efficiency.
- Miniaturized SICCs fabricated with dual-thickness substrates are effective for multiband filtering.
- The validated designs show practical applicability in high-frequency systems.
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