Vitali Valerio, Yang Tie, Minzioni Paolo
University of Pavia, Dept. of Electrical, Computer and Biomedical Engineering Via Ferrata 5A 27100 Pavia Italy
School of Physical Science and Technology, Southwest University Chongqing 400715 China.
RSC Adv. 2018 Nov 20;8(68):38955-38964. doi: 10.1039/c8ra08860h. eCollection 2018 Nov 16.
The development of lab-on-chip microfluidic systems based on acoustic actuation, and in particular on the acoustophoretic force, has recently attracted significant attention from the scientific community thanks, in part, to the possibility of sample sorting on the basis of both geometrical and mechanical properties. It is commonly recognized that sample prefocusing and launch-position optimization have a substantial effect on the performance of these systems but a clear explanation of how these two parameters influence the system efficiency is still missing. In this manuscript we discuss the impact of both the sample launch position and the sample distribution at the input by the theoretical analysis of a simplified system and by numerical simulations of realistic configurations. The results show that the system performance can be greatly improved by selecting the proper microchannel dimensions and sample-launch position, offering relevant guidelines for the design of micro-acoustofluidic lab-on-chip devices.
基于声学驱动,特别是基于声泳力的芯片实验室微流控系统的发展,最近引起了科学界的极大关注,部分原因是基于几何和机械特性进行样品分选的可能性。人们普遍认识到,样品预聚焦和发射位置优化对这些系统的性能有重大影响,但对于这两个参数如何影响系统效率仍缺乏清晰的解释。在本论文中,我们通过对简化系统的理论分析和对实际配置的数值模拟,讨论了样品发射位置和输入处样品分布的影响。结果表明,通过选择合适的微通道尺寸和样品发射位置,可以大大提高系统性能,为微声流控芯片实验室设备的设计提供了相关指导。