Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects

With the rapid advancement of 5 G technology, the demand for surface acoustic wave (SAW) devices is experiencing exponential growth. Precisely forecasting the speed at which Rayleigh waves propagate, taking into account size effects and flexoelectric properties, is vital for enhancing SAW device des...

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Main Authors: Wang, Linyao, Fang, Xun, Lou, Jia, Fan, Hui, Zhang, Aibing, Du, Jianke
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2024
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Online Access:https://hdl.handle.net/10356/179081
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1790812024-07-17T04:20:14Z Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects Wang, Linyao Fang, Xun Lou, Jia Fan, Hui Zhang, Aibing Du, Jianke School of Mechanical and Aerospace Engineering Engineering Piezoelectricity Flexoelectricity With the rapid advancement of 5 G technology, the demand for surface acoustic wave (SAW) devices is experiencing exponential growth. Precisely forecasting the speed at which Rayleigh waves propagate, taking into account size effects and flexoelectric properties, is vital for enhancing SAW device design. To address this need, the study explores Rayleigh wave propagation in a stratified system consisting of a nanoscale piezoelectric guiding layer atop an isotropic elastic substrate. The governing equations, boundary conditions, and interface continuity conditions between the guiding layer and substrate are established through the Hamiltonian principle. Following this, the dispersion equations for Rayleigh waves under electric open-circuit and electric short-circuit conditions are derived and solved numerically. Additionally, the effects of flexoelectricity, inertial gradients, strain gradients, electric field gradients, and the piezoelectric guiding layer thickness on the phase velocity of Rayleigh waves are extensively explored. Our findings indicate that flexoelectricity and strain gradients elevate the phase velocity, while inertial gradients and electric field gradients result in a decrease in the phase velocity. As the frequency of Rayleigh waves increases, the impact of these factors becomes more prominent. In addition, it is observed that electric field gradients play a less significant role compared to inertial gradients and strain gradients. The findings of this study could offer valuable insights for the advancement of miniaturized SAW devices designed for high-frequency service. Ministry of Education (MOE) The present work was funded by Singapore MOE AcRF Tier 1 (No. RG145/23), the Key Program of the Natural Science Foundation of Zhejiang Province (No. LZ22A020001), and the Ningbo Major Research and Development Plan Project (No. 2022Z210). 2024-07-17T04:20:14Z 2024-07-17T04:20:14Z 2024 Journal Article Wang, L., Fang, X., Lou, J., Fan, H., Zhang, A. & Du, J. (2024). Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects. Engineering Structures, 315, 118483-. https://dx.doi.org/10.1016/j.engstruct.2024.118483 0141-0296 https://hdl.handle.net/10356/179081 10.1016/j.engstruct.2024.118483 2-s2.0-85196847888 315 118483 en RG145/23 Engineering Structures © 2024 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering
Piezoelectricity
Flexoelectricity
spellingShingle Engineering
Piezoelectricity
Flexoelectricity
Wang, Linyao
Fang, Xun
Lou, Jia
Fan, Hui
Zhang, Aibing
Du, Jianke
Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects
description With the rapid advancement of 5 G technology, the demand for surface acoustic wave (SAW) devices is experiencing exponential growth. Precisely forecasting the speed at which Rayleigh waves propagate, taking into account size effects and flexoelectric properties, is vital for enhancing SAW device design. To address this need, the study explores Rayleigh wave propagation in a stratified system consisting of a nanoscale piezoelectric guiding layer atop an isotropic elastic substrate. The governing equations, boundary conditions, and interface continuity conditions between the guiding layer and substrate are established through the Hamiltonian principle. Following this, the dispersion equations for Rayleigh waves under electric open-circuit and electric short-circuit conditions are derived and solved numerically. Additionally, the effects of flexoelectricity, inertial gradients, strain gradients, electric field gradients, and the piezoelectric guiding layer thickness on the phase velocity of Rayleigh waves are extensively explored. Our findings indicate that flexoelectricity and strain gradients elevate the phase velocity, while inertial gradients and electric field gradients result in a decrease in the phase velocity. As the frequency of Rayleigh waves increases, the impact of these factors becomes more prominent. In addition, it is observed that electric field gradients play a less significant role compared to inertial gradients and strain gradients. The findings of this study could offer valuable insights for the advancement of miniaturized SAW devices designed for high-frequency service.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Wang, Linyao
Fang, Xun
Lou, Jia
Fan, Hui
Zhang, Aibing
Du, Jianke
format Article
author Wang, Linyao
Fang, Xun
Lou, Jia
Fan, Hui
Zhang, Aibing
Du, Jianke
author_sort Wang, Linyao
title Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects
title_short Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects
title_full Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects
title_fullStr Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects
title_full_unstemmed Piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects
title_sort piezoelectric layer guided in-plane surface waves with flexoelectricity and gradient effects
publishDate 2024
url https://hdl.handle.net/10356/179081
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