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Perturbation Analysis of a Multiple Layer Guided Love Wave Sensor in a Viscoelastic Environment

Surface acoustic wave sensors have the advantage of fast response, low-cost, and wireless interfacing capability and they have been used in the medical analysis, material characterization, and other application fields that immerse the device under a liquid environment. The theoretical analysis of th...

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Autores principales: Wang, Tao, Murphy, Ryan, Wang, Jing, Mohapatra, Shyam S., Mohapatra, Subhra, Guldiken, Rasim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6832912/
https://www.ncbi.nlm.nih.gov/pubmed/31635318
http://dx.doi.org/10.3390/s19204533
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author Wang, Tao
Murphy, Ryan
Wang, Jing
Mohapatra, Shyam S.
Mohapatra, Subhra
Guldiken, Rasim
author_facet Wang, Tao
Murphy, Ryan
Wang, Jing
Mohapatra, Shyam S.
Mohapatra, Subhra
Guldiken, Rasim
author_sort Wang, Tao
collection PubMed
description Surface acoustic wave sensors have the advantage of fast response, low-cost, and wireless interfacing capability and they have been used in the medical analysis, material characterization, and other application fields that immerse the device under a liquid environment. The theoretical analysis of the single guided layer shear horizontal acoustic wave based on the perturbation theory has seen developments that span the past 20 years. However, multiple guided layer systems under a liquid environment have not been thoroughly analyzed by existing theoretical models. A dispersion equation previously derived from a system of three rigidly coupled elastic mass layers is extended and developed in this study with multiple guided layers to analyze how the liquid layer’s properties affect the device’s sensitivity. The combination of the multiple layers to optimize the sensitivity of an acoustic wave sensor is investigated in this study. The Maxwell model of viscoelasticity is applied to represent the liquid layer. A thorough analysis of the complex velocity due to the variations of the liquid layer’s properties and thickness is derived and discussed to optimize multilayer Surface acoustic wave (SAW) sensor design. Numerical simulation of the sensitivity with a liquid layer on top of two guided layers is investigated in this study as well. The parametric investigation was conducted by varying the thicknesses for the liquid layer and the guided layers. The effect of the liquid layer viscosity on the sensitivity of the design is also presented in this study. The two guided layer device can achieve higher sensitivity than the single guided layer counterpart in a liquid environment by optimizing the second guided layer thickness. This perturbation analysis is valuable for Love wave sensor optimization to detect the liquid biological samples and analytes.
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spelling pubmed-68329122019-11-25 Perturbation Analysis of a Multiple Layer Guided Love Wave Sensor in a Viscoelastic Environment Wang, Tao Murphy, Ryan Wang, Jing Mohapatra, Shyam S. Mohapatra, Subhra Guldiken, Rasim Sensors (Basel) Article Surface acoustic wave sensors have the advantage of fast response, low-cost, and wireless interfacing capability and they have been used in the medical analysis, material characterization, and other application fields that immerse the device under a liquid environment. The theoretical analysis of the single guided layer shear horizontal acoustic wave based on the perturbation theory has seen developments that span the past 20 years. However, multiple guided layer systems under a liquid environment have not been thoroughly analyzed by existing theoretical models. A dispersion equation previously derived from a system of three rigidly coupled elastic mass layers is extended and developed in this study with multiple guided layers to analyze how the liquid layer’s properties affect the device’s sensitivity. The combination of the multiple layers to optimize the sensitivity of an acoustic wave sensor is investigated in this study. The Maxwell model of viscoelasticity is applied to represent the liquid layer. A thorough analysis of the complex velocity due to the variations of the liquid layer’s properties and thickness is derived and discussed to optimize multilayer Surface acoustic wave (SAW) sensor design. Numerical simulation of the sensitivity with a liquid layer on top of two guided layers is investigated in this study as well. The parametric investigation was conducted by varying the thicknesses for the liquid layer and the guided layers. The effect of the liquid layer viscosity on the sensitivity of the design is also presented in this study. The two guided layer device can achieve higher sensitivity than the single guided layer counterpart in a liquid environment by optimizing the second guided layer thickness. This perturbation analysis is valuable for Love wave sensor optimization to detect the liquid biological samples and analytes. MDPI 2019-10-18 /pmc/articles/PMC6832912/ /pubmed/31635318 http://dx.doi.org/10.3390/s19204533 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Tao
Murphy, Ryan
Wang, Jing
Mohapatra, Shyam S.
Mohapatra, Subhra
Guldiken, Rasim
Perturbation Analysis of a Multiple Layer Guided Love Wave Sensor in a Viscoelastic Environment
title Perturbation Analysis of a Multiple Layer Guided Love Wave Sensor in a Viscoelastic Environment
title_full Perturbation Analysis of a Multiple Layer Guided Love Wave Sensor in a Viscoelastic Environment
title_fullStr Perturbation Analysis of a Multiple Layer Guided Love Wave Sensor in a Viscoelastic Environment
title_full_unstemmed Perturbation Analysis of a Multiple Layer Guided Love Wave Sensor in a Viscoelastic Environment
title_short Perturbation Analysis of a Multiple Layer Guided Love Wave Sensor in a Viscoelastic Environment
title_sort perturbation analysis of a multiple layer guided love wave sensor in a viscoelastic environment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6832912/
https://www.ncbi.nlm.nih.gov/pubmed/31635318
http://dx.doi.org/10.3390/s19204533
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