Ali Mushtaq, Kim Woohyuk, Khan Muhammad Soban, Sahin Mehmet Akif, Destgeer Ghulam, Park Jinsoo
Department of Mechanical Engineering, Chonnam National University, 77 Yongbong-ro, Buk-gu, Gwangju 61186, Republic of Korea.
Control and Manipulation of Microscale Living Objects, Center for Translational Cancer Research (TranslaTUM), Munich Institute of Biomedical Engineering (MIBE), Department of Electrical Engineering, School of Computation, Information and Technology (CIT), Technical University of Munich, Einsteinstraße 25, 81675 Munich, Germany.
Biomicrofluidics. 2025 Jun 4;19(3):031502. doi: 10.1063/5.0261531. eCollection 2025 May.
Acoustofluidics, offering contact-free and precise manipulation of micro-objects, has emerged as a transformative tool for various biological and medical applications. In recent years, significant advancements have been made in droplet manipulation using acoustic waves. This review provides an in-depth exploration of acoustofluidic techniques for droplet manipulation, presenting a balanced perspective on the role of this versatile platform across diverse applications. The paper begins by introducing the underlying mechanism of acoustic forces acting on the droplets, followed by a comprehensive discussion of acoustofluidic techniques tailored for essential unit operations, such as droplet generation, separation, merging, splitting, steering, trapping, in-droplet sample manipulation, sample control within sessile droplets, and digital acoustofluidics. Finally, the prospects and limitations of acoustofluidics for droplet manipulations are also discussed, suggesting the future direction of droplet acoustofluidics research.
声流体技术能够对微物体进行非接触式精确操控,已成为用于各种生物和医学应用的变革性工具。近年来,利用声波进行液滴操控取得了重大进展。本综述深入探讨了用于液滴操控的声流体技术,全面阐述了这个多功能平台在各种应用中的作用。文章首先介绍了作用于液滴的声学力的基本机制,随后全面讨论了针对诸如液滴生成、分离、合并、分裂、转向、捕获、液滴内样品操控、静态液滴内样品控制以及数字声流体等基本单元操作的声流体技术。最后,还讨论了声流体技术在液滴操控方面的前景和局限性,为液滴声流体技术的未来研究方向提供了参考。