Interface Acoustic Waves in 128° YX-LiNbO3/SU-8/Overcoat Structures.

IF 3.5 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL Micromachines Pub Date : 2025-01-16 DOI:10.3390/mi16010099
Cinzia Caliendo, Massimiliano Benetti, Domenico Cannatà, Farouk Laidoudi, Gaetana Petrone
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Abstract

The propagation of interface acoustic waves (IAWs) in 128° YX-LiNbO3/SU-8/overcoat structures was theoretically studied and experimentally investigated for different types of overcoat materials and thicknesses of the SU-8 adhesive layer. Three-dimensional finite element method analysis was performed using Comsol Multiphysics software to design an optimized multilayer configuration able to achieve an efficient guiding effect of the IAW at the LiNbO3/overcoat interface. Numerical analysis results showed the following: (i) an overcoat faster than the piezoelectric half-space ensures that the wave propagation is confined mainly close to the surface of the LiNbO3, although with minimal scattering in the overcoat; (ii) the presence of the SU-8, in addition to performing the essential function of an adhesive layer, can also promote the trapping of the acoustic energy toward the surface of the piezoelectric substrate; and (iii) the electromechanical coupling efficiency of the IAW is very close to that of the surface acoustic wave (SAW) along the bare LiNbO3 half-space. The numerical predictions were experimentally assessed for some SU-8 layer thicknesses and overcoat material types. The propagation of the IAWs was experimentally measured in LiNbO3/SU-8/fused silica, LiNbO3/SU-8/(001)Si, and LiNbO3/SU-8/c-Al2O3 structures for an SU-8 layer about 15 µm thick; the velocities of the IAWs were found in good agreement with the theoretically calculated values. Although the interest in IAWs was born many years ago for packageless applications, it can currently be renewed if thought for applications in microfluidics. Indeed, the IAWs may represent a valid alternative to standing SAWs, which are strongly attenuated when travelling beneath the walls of polydimethylsiloxane (PDMS) microfluidic channels for continuous flow particle manipulation, provided that the channel is excavated into the overcoating.

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128°YX-LiNbO3/SU-8/大衣结构中的界面声波。
对界面声波在128°YX-LiNbO3/SU-8/涂层结构中的传播进行了理论研究,并对不同涂层材料类型和SU-8粘接层厚度下的界面声波传播进行了实验研究。利用Comsol Multiphysics软件进行三维有限元分析,设计了优化的多层结构,能够在LiNbO3/大衣界面处实现IAW的有效导向效果。数值分析结果表明:(1)包层速度比压电半空间快,使得波的传播主要局限在LiNbO3表面附近,尽管包层中的散射最小;(ii) SU-8的存在,除了执行粘合层的基本功能外,还可以促进声波能量向压电基板表面的捕获;(3) IAW沿裸LiNbO3半空间的机电耦合效率与表面声波(SAW)的机电耦合效率非常接近。对一些SU-8层厚度和涂层材料类型进行了数值预测。在厚度约为15µm的SU-8层上,实验测量了在LiNbO3/SU-8/熔融二氧化硅、LiNbO3/SU-8/(001)Si和LiNbO3/SU-8/c-Al2O3结构中的光势传播;结果表明,这些粒子的速度与理论计算值吻合较好。尽管多年前对无封装应用产生了兴趣,但如果考虑到微流体的应用,它现在可以重新开始。事实上,如果通道被挖掘到覆盖层中,则在聚二甲基硅氧烷(PDMS)微流控通道的壁下移动时,saw会被强烈衰减。
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来源期刊
Micromachines
Micromachines NANOSCIENCE & NANOTECHNOLOGY-INSTRUMENTS & INSTRUMENTATION
CiteScore
5.20
自引率
14.70%
发文量
1862
审稿时长
16.31 days
期刊介绍: Micromachines (ISSN 2072-666X) is an international, peer-reviewed open access journal which provides an advanced forum for studies related to micro-scaled machines and micromachinery. It publishes reviews, regular research papers and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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