Mudugamuwa Amith, Roshan Uditha, Hettiarachchi Samith, Cha Haotian, Musharaf Hafiz, Kang Xiaoyue, Trinh Quang Thang, Xia Huan Ming, Nguyen Nam-Trung, Zhang Jun
Queensland Micro and Nanotechnology Centre, Griffith University, Brisbane, QLD, 4111, Australia.
School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.
Small. 2024 Dec;20(50):e2404685. doi: 10.1002/smll.202404685. Epub 2024 Sep 9.
Microfluidics, the science and technology of manipulating fluids in microscale channels, offers numerous advantages, such as low energy consumption, compact device size, precise control, fast reaction, and enhanced portability. These benefits have led to applications in biomedical assays, disease diagnostics, drug discovery, neuroscience, and so on. Fluid flow within microfluidic channels is typically in the laminar flow region, which is characterized by low Reynolds numbers but brings the challenge of efficient mixing of fluids. Periodic flows are time-dependent fluid flows, featuring repetitive patterns that can significantly improve fluid mixing and extend the effective length of microchannels for submicron and nanoparticle manipulation. Besides, periodic flow is crucial in organ-on-a-chip (OoC) for accurately modeling physiological processes, advancing disease understanding, drug development, and personalized medicine. Various techniques for generating periodic flows have been reported, including syringe pumps, peristalsis, and actuation based on electric, magnetic, acoustic, mechanical, pneumatic, and fluidic forces, yet comprehensive reviews on this topic remain limited. This paper aims to provide a comprehensive review of periodic flows in microfluidics, from fundamental mechanisms to generation techniques and applications. The challenges and future perspectives are also discussed to exploit the potential of periodic flows in microfluidics.
微流控技术,即在微尺度通道中操控流体的科学与技术,具有诸多优势,如低能耗、设备尺寸紧凑、控制精确、反应快速以及便携性增强等。这些优势已促使其在生物医学检测、疾病诊断、药物研发、神经科学等领域得到应用。微流控通道内的流体流动通常处于层流区域,其特点是雷诺数较低,但这也带来了流体高效混合的挑战。周期性流动是随时间变化的流体流动,具有重复模式,能够显著改善流体混合,并延长用于亚微米和纳米颗粒操控的微通道的有效长度。此外,周期性流动在芯片器官(OoC)中对于准确模拟生理过程、增进对疾病的理解、药物研发和个性化医疗至关重要。已经报道了多种产生周期性流动的技术,包括注射泵、蠕动以及基于电、磁、声、机械、气动和流体力的驱动,但关于这一主题的全面综述仍然有限。本文旨在对微流控中的周期性流动进行全面综述,涵盖从基本机制到产生技术及应用等方面。同时还讨论了挑战和未来展望,以挖掘微流控中周期性流动的潜力。