Huang Biao, Xie Huiying, Li Zhenzhen
School of Aerospace Engineering, Beijing Institute of Technology, 5# ZhongGuanCunNan Street, Haidian District, Beijing 100081, China.
Micromachines (Basel). 2023 Mar 11;14(3):638. doi: 10.3390/mi14030638.
Submicron droplets are ubiquitous in nature and widely applied in fields such as biomedical diagnosis and therapy, oil recovery and energy conversion, among others. The submicron droplets are kinetically stable, their submicron size endows them with good mobility in highly constricted pathways, and the high surface-to-volume ratio allows effective loading of chemical components at the interface and good heat transfer performance. Conventional generation technology of submicron droplets in bulk involves high energy input, or relies on chemical energy released from the system. Microfluidic methods are widely used to generate highly monodispersed micron-sized or bigger droplets, while downsizing to the order of 100 nm was thought to be challenging because of sophisticated nanofabrication. In this review, we summarize the microfluidic methods that are promising for the generation of submicron droplets, with an emphasize on the device fabrication, operational condition, and resultant droplet size. Microfluidics offer a relatively energy-efficient and versatile tool for the generation of highly monodisperse submicron droplets.
亚微米液滴在自然界中无处不在,并广泛应用于生物医学诊断与治疗、石油开采和能量转换等领域。亚微米液滴具有动力学稳定性,其亚微米尺寸使其在高度受限的通道中具有良好的流动性,且高比表面积允许在界面处有效负载化学成分并具有良好的传热性能。传统的批量生成亚微米液滴的技术需要高能量输入,或依赖于系统释放的化学能。微流控方法被广泛用于生成高度单分散的微米级或更大尺寸的液滴,而由于复杂的纳米制造技术,将尺寸缩小到100纳米量级被认为具有挑战性。在这篇综述中,我们总结了有望用于生成亚微米液滴的微流控方法,重点介绍了器件制造、操作条件和所得液滴尺寸。微流控技术为生成高度单分散的亚微米液滴提供了一种相对节能且通用的工具。