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Three-Dimensional Finite Element Analysis and Characterization of Quasi-Surface Acoustic Wave Resonators

In this work, three-dimensional finite element analysis (3D FEA) of quasi-surface acoustic wave (QSAW) resonators with high accuracy is reported. The QSAW resonators consist of simple molybdenum (Mo) interdigitated transducers (IDT) on solidly mounted stacked layers of AlN/Mo/Si. Different to the SA...

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Autores principales: Chen, Wen, Zhang, Linwei, Yang, Shangshu, Jia, Wenhan, Zhang, Songsong, Gu, Yuandong, Lou, Liang, Wu, Guoqiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8472577/
https://www.ncbi.nlm.nih.gov/pubmed/34577761
http://dx.doi.org/10.3390/mi12091118
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author Chen, Wen
Zhang, Linwei
Yang, Shangshu
Jia, Wenhan
Zhang, Songsong
Gu, Yuandong
Lou, Liang
Wu, Guoqiang
author_facet Chen, Wen
Zhang, Linwei
Yang, Shangshu
Jia, Wenhan
Zhang, Songsong
Gu, Yuandong
Lou, Liang
Wu, Guoqiang
author_sort Chen, Wen
collection PubMed
description In this work, three-dimensional finite element analysis (3D FEA) of quasi-surface acoustic wave (QSAW) resonators with high accuracy is reported. The QSAW resonators consist of simple molybdenum (Mo) interdigitated transducers (IDT) on solidly mounted stacked layers of AlN/Mo/Si. Different to the SAW resonators operating in the piezoelectric substrates, the reported resonators are operating in the QSAW mode, since the IDT-excited Rayleigh waves not only propagate in the thin piezoelectric layer of AlN, but also penetrate the Si substrate. Compared with the commonly used two-dimensional (2D) FEA approach, the 3D FEA method reported in this work shows high accuracy, in terms of the resonant frequency, temperature coefficient of frequency ([Formula: see text]), effective coupling coefficient ([Formula: see text]) and frequency response. The fabricated QSAW resonator has demonstrated a [Formula: see text] of 0.291%, series resonant frequency of 422.50 MHz, and [Formula: see text] of −23.418 ppm/°C in the temperature range between 30 °C and 150 °C, for the design of wavelength at 10.4 [Formula: see text] m. The measurement results agree well with the simulations. Moreover, the QSAW resonators are more mechanically robust than lamb wave devices and can be integrated with silicon-based film bulk acoustic resonator (FBAR) devices to offer multi-frequency function in a single chip.
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spelling pubmed-84725772021-09-28 Three-Dimensional Finite Element Analysis and Characterization of Quasi-Surface Acoustic Wave Resonators Chen, Wen Zhang, Linwei Yang, Shangshu Jia, Wenhan Zhang, Songsong Gu, Yuandong Lou, Liang Wu, Guoqiang Micromachines (Basel) Article In this work, three-dimensional finite element analysis (3D FEA) of quasi-surface acoustic wave (QSAW) resonators with high accuracy is reported. The QSAW resonators consist of simple molybdenum (Mo) interdigitated transducers (IDT) on solidly mounted stacked layers of AlN/Mo/Si. Different to the SAW resonators operating in the piezoelectric substrates, the reported resonators are operating in the QSAW mode, since the IDT-excited Rayleigh waves not only propagate in the thin piezoelectric layer of AlN, but also penetrate the Si substrate. Compared with the commonly used two-dimensional (2D) FEA approach, the 3D FEA method reported in this work shows high accuracy, in terms of the resonant frequency, temperature coefficient of frequency ([Formula: see text]), effective coupling coefficient ([Formula: see text]) and frequency response. The fabricated QSAW resonator has demonstrated a [Formula: see text] of 0.291%, series resonant frequency of 422.50 MHz, and [Formula: see text] of −23.418 ppm/°C in the temperature range between 30 °C and 150 °C, for the design of wavelength at 10.4 [Formula: see text] m. The measurement results agree well with the simulations. Moreover, the QSAW resonators are more mechanically robust than lamb wave devices and can be integrated with silicon-based film bulk acoustic resonator (FBAR) devices to offer multi-frequency function in a single chip. MDPI 2021-09-17 /pmc/articles/PMC8472577/ /pubmed/34577761 http://dx.doi.org/10.3390/mi12091118 Text en © 2021 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
Chen, Wen
Zhang, Linwei
Yang, Shangshu
Jia, Wenhan
Zhang, Songsong
Gu, Yuandong
Lou, Liang
Wu, Guoqiang
Three-Dimensional Finite Element Analysis and Characterization of Quasi-Surface Acoustic Wave Resonators
title Three-Dimensional Finite Element Analysis and Characterization of Quasi-Surface Acoustic Wave Resonators
title_full Three-Dimensional Finite Element Analysis and Characterization of Quasi-Surface Acoustic Wave Resonators
title_fullStr Three-Dimensional Finite Element Analysis and Characterization of Quasi-Surface Acoustic Wave Resonators
title_full_unstemmed Three-Dimensional Finite Element Analysis and Characterization of Quasi-Surface Acoustic Wave Resonators
title_short Three-Dimensional Finite Element Analysis and Characterization of Quasi-Surface Acoustic Wave Resonators
title_sort three-dimensional finite element analysis and characterization of quasi-surface acoustic wave resonators
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8472577/
https://www.ncbi.nlm.nih.gov/pubmed/34577761
http://dx.doi.org/10.3390/mi12091118
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