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Updated: Aug 6, 2026

Fabrication and Characterization of Superconducting Resonators
Published on: May 21, 2016
A dispersion-guided design methodology for super-high-frequency solidly mounted resonators
Mengran Yu1, Peng Li2, Rujian Zhu3
1State Key Laboratory of Mechanics and Control for Aerospace Structures, College of Aerospace Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.
This study presents a new method for designing Solidly Mounted Resonators (SMRs) for 6G communications. The optimized SMRs show improved acoustic energy confinement, crucial for next-generation radio frequency devices.
Area of Science:
- Acoustic physics
- Materials science
- Radio frequency engineering
Background:
- Solidly Mounted Resonators (SMRs) are vital for RF filters and sensors.
- Miniaturization for 6G communication systems causes frequency deviation in conventional SMR designs due to electrode effects.
- Effective acoustic energy confinement is challenging in advanced SMR structures.
Purpose of the Study:
- To propose a novel design and optimization approach for SMR structures.
- To address frequency deviation and acoustic energy confinement issues in SMRs for super-high-frequency (SHF) bands.
- To provide a reliable method for designing SMRs for next-generation RF devices.
Main Methods:
- Derivation of dispersion equations for laminated Bragg reflectors using Stroh formalism and transfer matrix method.
- Application of the Moduli Ratio Convergence Method to solve complex dispersion equations for intricate SMR configurations.
- Redesign of Bragg reflectors based on actual cutoff frequencies and global scaling adjustment for precise frequency tuning.
Main Results:
- Optimized SMR structures exhibit highly concentrated acoustic energy within the resonant region.
- Reduced energy penetration into the Bragg reflector and minimal energy leakage into the substrate.
- Demonstrated effectiveness of the novel design approach through structural dispersion analysis.
Conclusions:
- The proposed method offers a reliable and efficient approach for designing SMRs in the SHF band.
- The optimized SMR structures are suitable for next-generation RF devices operating at higher frequencies.
- This research provides valuable guidance for advancing RF filter and sensor technology.
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