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FEM Simulation of a High-Performance 128°Y–X LiNbO(3)/SiO(2)/Si Functional Substrate for Surface Acoustic Wave Gyroscopes

To obtain a high-performance surface acoustic wave (SAW) gyroscope substrate, the propagation characteristics and gyroscopic effect of Rayleigh waves in a 128°Y–X LiNbO(3)/SiO(2)/Si (LNOI) functional substrate were investigated with a three-dimensional finite element method. The influence of LNOI st...

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Autores principales: Ma, Rui, Liu, Weiguo, Sun, Xueping, Zhou, Shun, Lin, Dabin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8879009/
https://www.ncbi.nlm.nih.gov/pubmed/35208326
http://dx.doi.org/10.3390/mi13020202
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author Ma, Rui
Liu, Weiguo
Sun, Xueping
Zhou, Shun
Lin, Dabin
author_facet Ma, Rui
Liu, Weiguo
Sun, Xueping
Zhou, Shun
Lin, Dabin
author_sort Ma, Rui
collection PubMed
description To obtain a high-performance surface acoustic wave (SAW) gyroscope substrate, the propagation characteristics and gyroscopic effect of Rayleigh waves in a 128°Y–X LiNbO(3)/SiO(2)/Si (LNOI) functional substrate were investigated with a three-dimensional finite element method. The influence of LNOI structural parameters on Rayleigh wave characteristics, including the phase velocity (v(p)), electromechanical coupling coefficient (K(2)) and temperature coefficient of frequency (TCF), were analyzed. The results demonstrate that the SiO(2) layer compensates for the negative TCF of 128°Y–X LiNbO(3) and enhances the K(2) of the LNOI substrate. The Rayleigh wave velocity change of the LNOI substrate after rotations in different directions was studied. The gyroscope gain factor (η) represents the strength of the gyroscopic effect in the differential traveling wave SAW gyroscope and is defined. The η(y) and η(z) of the LNOI substrate with different structural parameters were investigated. Finally, an LNOI substrate with an h(LN)/λ of 0.2 and an h(SiO2)/λ of 0.05 was obtained by balancing the characteristic parameters, with a K(2) of 3.96%, TCF of −18.75 ppm/°C and η(y) of 0.26. The LNOI substrate has a better gyroscopic effect and temperature stability than the 128°Y–X LiNbO(3) crystal. The LNOI substrate meets device miniaturization and integration needs.
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spelling pubmed-88790092022-02-26 FEM Simulation of a High-Performance 128°Y–X LiNbO(3)/SiO(2)/Si Functional Substrate for Surface Acoustic Wave Gyroscopes Ma, Rui Liu, Weiguo Sun, Xueping Zhou, Shun Lin, Dabin Micromachines (Basel) Article To obtain a high-performance surface acoustic wave (SAW) gyroscope substrate, the propagation characteristics and gyroscopic effect of Rayleigh waves in a 128°Y–X LiNbO(3)/SiO(2)/Si (LNOI) functional substrate were investigated with a three-dimensional finite element method. The influence of LNOI structural parameters on Rayleigh wave characteristics, including the phase velocity (v(p)), electromechanical coupling coefficient (K(2)) and temperature coefficient of frequency (TCF), were analyzed. The results demonstrate that the SiO(2) layer compensates for the negative TCF of 128°Y–X LiNbO(3) and enhances the K(2) of the LNOI substrate. The Rayleigh wave velocity change of the LNOI substrate after rotations in different directions was studied. The gyroscope gain factor (η) represents the strength of the gyroscopic effect in the differential traveling wave SAW gyroscope and is defined. The η(y) and η(z) of the LNOI substrate with different structural parameters were investigated. Finally, an LNOI substrate with an h(LN)/λ of 0.2 and an h(SiO2)/λ of 0.05 was obtained by balancing the characteristic parameters, with a K(2) of 3.96%, TCF of −18.75 ppm/°C and η(y) of 0.26. The LNOI substrate has a better gyroscopic effect and temperature stability than the 128°Y–X LiNbO(3) crystal. The LNOI substrate meets device miniaturization and integration needs. MDPI 2022-01-27 /pmc/articles/PMC8879009/ /pubmed/35208326 http://dx.doi.org/10.3390/mi13020202 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ma, Rui
Liu, Weiguo
Sun, Xueping
Zhou, Shun
Lin, Dabin
FEM Simulation of a High-Performance 128°Y–X LiNbO(3)/SiO(2)/Si Functional Substrate for Surface Acoustic Wave Gyroscopes
title FEM Simulation of a High-Performance 128°Y–X LiNbO(3)/SiO(2)/Si Functional Substrate for Surface Acoustic Wave Gyroscopes
title_full FEM Simulation of a High-Performance 128°Y–X LiNbO(3)/SiO(2)/Si Functional Substrate for Surface Acoustic Wave Gyroscopes
title_fullStr FEM Simulation of a High-Performance 128°Y–X LiNbO(3)/SiO(2)/Si Functional Substrate for Surface Acoustic Wave Gyroscopes
title_full_unstemmed FEM Simulation of a High-Performance 128°Y–X LiNbO(3)/SiO(2)/Si Functional Substrate for Surface Acoustic Wave Gyroscopes
title_short FEM Simulation of a High-Performance 128°Y–X LiNbO(3)/SiO(2)/Si Functional Substrate for Surface Acoustic Wave Gyroscopes
title_sort fem simulation of a high-performance 128°y–x linbo(3)/sio(2)/si functional substrate for surface acoustic wave gyroscopes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8879009/
https://www.ncbi.nlm.nih.gov/pubmed/35208326
http://dx.doi.org/10.3390/mi13020202
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