Coupling Agents in Acoustofluidics: Mechanisms, Materials, and Applications.

IF 3 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL
Micromachines Pub Date : 2025-07-19 DOI:10.3390/mi16070823
Shenhao Deng, Yiting Yang, Menghui Huang, Cheyu Wang, Enze Guo, Jingui Qian, Joshua E-Y Lee
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引用次数: 0

Abstract

Acoustic coupling agents serve as critical interfacial materials connecting piezoelectric transducers with microfluidic chips in acoustofluidic systems. Their performance directly impacts acoustic wave transmission efficiency, device reusability, and reliability in biomedical applications. Considering the rapidly growing body of research in the field of acoustic microfluidics, this review aims to serve as an all-in-one reference on the role of acoustic coupling agents and relevant considerations pertinent to acoustofluidic devices for anyone working in or seeking to enter the field of disposable acoustofluidic devices. To this end, this review seeks to summarize and categorize key aspects of acoustic couplants in the implementation of acoustofluidic devices by examining their underlying physical mechanisms, material classifications, and core applications of coupling agents in acoustofluidics. Gel-based coupling agents are particularly favored for their long-term stability, high coupling efficiency, and ease of preparation, making them integral to acoustic flow control applications. In practice, coupling agents facilitate microparticle trapping, droplet manipulation, and biosample sorting through acoustic impedance matching and wave mode conversion (e.g., Rayleigh-to-Lamb waves). Their thickness and acoustic properties (sound velocity, attenuation coefficient) further modulate sound field distribution to optimize acoustic radiation forces and thermal effects. However, challenges remain regarding stability (evaporation, thermal degradation) and chip compatibility. Further aspects of research into gel-based agents requiring attention include multilayer coupled designs, dynamic thickness control, and enhancing biocompatibility to advance acoustofluidic technologies in point-of-care diagnostics and high-throughput analysis.

声流耦合剂:机制、材料和应用。
在声流控系统中,声偶联剂是连接压电换能器与微流控芯片的关键界面材料。它们的性能直接影响声波在生物医学应用中的传输效率、设备的可重用性和可靠性。考虑到声微流体领域的研究迅速发展,本文旨在为任何从事或寻求进入一次性声流体装置领域的人提供关于声耦合剂的作用和与声流体装置相关的相关注意事项的综合参考。为此,本文试图通过考察其潜在的物理机制、材料分类以及耦合剂在声流体中的核心应用,来总结和分类声耦合剂在声流体器件实现中的关键方面。凝胶基偶联剂因其长期稳定性、高耦合效率和易于制备而受到青睐,使其成为声流控制应用中不可或缺的一部分。在实践中,偶联剂通过声阻抗匹配和波模式转换(例如瑞利-兰姆波)促进微粒捕获、液滴操作和生物样品分类。它们的厚度和声学特性(声速、衰减系数)进一步调节声场分布,以优化声辐射力和热效应。然而,在稳定性(蒸发、热降解)和芯片兼容性方面仍然存在挑战。凝胶基药物的进一步研究需要关注的方面包括多层耦合设计、动态厚度控制和增强生物相容性,以推进声流体技术在即时诊断和高通量分析中的应用。
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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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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