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A Dispersion-Engineered YX-LN/SIO2/Sapphire SH-SAW Resonator for Enhanced Electromechanical Coupling and Rayleigh Mode Suppression
Conference paper

A Dispersion-Engineered YX-LN/SIO2/Sapphire SH-SAW Resonator for Enhanced Electromechanical Coupling and Rayleigh Mode Suppression

Tzu-Hsuan Hsu, Zhi-Qiang Lee, Chia-Hsien Tsai, Vakhtang Chulukhadze, Cheng-Chien Lin, Ya-Ching Yu, Ruochen Lu and Ming-Huang Li
Proceedings of the IEEE International Conference on Micro Electro Mechanical Systems (MEMS), pp.27-30
2024

Abstract

Acoustic resonator dispersion engineering electromechanical coupling lithium niobate Rayleigh mode shear horizontal (SH) mode surface acoustic wave Electronic Optical and Magnetic Materials Condensed Matter Physics Mechanical Engineering Electrical and Electronic Engineering
In this work, an optimized shear-horizontal surface acoustic wave (SH-SAW) resonator based on YX-LN/SiO2/Sapphire (LNOS) functional substrate is demonstrated with a large electromechanical coupling coefficient (keff2) and high quality factor (Q), while effectively mitigating the Rayleigh SAW (R-SAW). Although the LN/SiO2 hetero acoustic stacking offers excellent acoustic energy confinement for SH-SAW operation, it generates significant R-SAW as an unintended byproduct alongside the targeted mode. Through detailed numerical simulations, we revealed that when these two modes are in close proximity, their electromechanical coupling undergoes drastic variations. Therefore, specific design ranges can be found to enhance the SH-SAW while simultaneously eliminating the keff2 of R-SAW. As a proof-of-concept, one keff2-enhanced design is experimentally verified, exhibiting a large keff2 of 47%, a high Bode-Q (Qmax) of 1,000, yielding an excellent figure-of-merit (FoM = keff2·Qmax) of 470 at 1 GHz, with successful suppression of the R-SAW.

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