FEM modeling and simulation of a layered SAW device based on ZnO/128° YX LiNbO3

Z. T. Salim, Uda Hashim, M. Arshad
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引用次数: 8

Abstract

In this paper, the modeling and simulation of a layered surface acoustic wave device based on ZnO/128° YX LiNbO3 were conducted using Finite Element Method (FEM) in COMSOL Multiphysics 4.3b platform. The SAWs propagation characteristics were numerically investigated with variation in the ZnO layer thickness. The results show that the SAW device frequency response was varied with the ZnO layer thickness from 166.1 MHz to 150.4 MHz. The free and metalized phase velocities (νf and νm) were calculated and used to calculate the electromechanical coupling coefficient (K2) of the structure. The results show that a large coupling coefficient of 6.05% can be obtained in 500 nm ZnO layer thickness which is in a good agreement with the data published by Nakamura and Hanamoka.
基于ZnO/128°YX LiNbO3的层状SAW器件有限元建模与仿真
本文在COMSOL Multiphysics 4.3b平台上,采用有限元法对基于ZnO/128°YX LiNbO3的层状表面声波器件进行建模与仿真。数值研究了ZnO层厚度变化对saw传播特性的影响。结果表明:ZnO层厚度在166.1 MHz ~ 150.4 MHz范围内,SAW器件的频率响应随ZnO层厚度的变化而变化;计算了自由相速度和金属化相速度νf和νm,并用它们计算了结构的机电耦合系数K2。结果表明,在500 nm的ZnO层厚度上可以获得6.05%的大耦合系数,这与Nakamura和Hanamoka发表的数据吻合得很好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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