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基于体声波与二维/三维平台中液晶回流效应驱动相结合的微粒操控

Microparticle Manipulation Based on the Bulk Acoustic Wave Combined with the Liquid Crystal Backflow Effect Driving in 2D/3D Platforms.

作者信息

Guan Yanfang, Wang Xiaoliang, Liu Guangyu, Li Wujie, Zhang Kun, Sun Baoshuo, Shi Feifan, Hui Yanbo, Yan Bingsheng, Xu Jie, Wu Zaihui, Duan Zhiyong, Wei Ronghan

机构信息

School of Electromechanical Engineering, Henan University of Technology, Zhengzhou 450001, China.

National Engineering Laboratory/Key Laboratory of Henan Province, Henan University of Technology, Zhengzhou 450001, China.

出版信息

ACS Omega. 2022 Jul 15;7(29):25140-25151. doi: 10.1021/acsomega.2c01783. eCollection 2022 Jul 26.

Abstract

Microparticle manipulation has been widely used in clinical diagnosis, cell separation, and biochemical analysis via optics, electronics, magnetics, or acoustic wave driving. Among them, the bulk acoustic wave (BAW) driving method has been increasingly adopted because of non-contact, easy control, and precise manipulation. However, its low manipulation efficiency limits the usage of the BAW driving in high viscosity solutions. Therefore, in order to obtain larger driving force and more flexible manipulation of microparticles, both two-dimensional (2D) and three-dimensional (3D) platforms based on the BAW and liquid crystal backflow effect (LCBE) driving in liquid crystal (LC) solutions are proposed. The driving forces applied on the microparticles allow for the change of microparticle moving direction, which is also ascertained through theory analysis combined with various driving methods. Specifically, the maximum moving speed (68.78 μm/s) of the polystyrene particles is obtained by the BAW (13 Vpp) combined with LCBE (30 V) at a low frequency of 7.2 kHz in the 2D platform. Precise position manipulation in 3D is also fulfilled through a programmable logic control model using polystyrene particles as a demonstration. In addition, red blood cells mixed with LC solutions are arranged in a line or gathered in the pressure nodes of the BAW forces along with sinusoid signals generated by various transducer combinations. Therefore, it is approved that the LC solution that induces the LCBE force could increase the microparticle manipulation efficiency in both 2D and 3D platforms. The proposed method will open up new avenues in particle manipulation and benefit a variety of applications in cell separation, drug synthesis, analytical chemistry, and others.

摘要

微粒操控已通过光学、电子、磁学或声波驱动广泛应用于临床诊断、细胞分离和生化分析。其中,体声波(BAW)驱动方法因其非接触、易于控制和精确操控而越来越多地被采用。然而,其低操控效率限制了BAW驱动在高粘度溶液中的应用。因此,为了获得更大的驱动力和对微粒更灵活的操控,提出了基于体声波和液晶回流效应(LCBE)在液晶(LC)溶液中驱动的二维(2D)和三维(3D)平台。施加在微粒上的驱动力允许微粒移动方向的改变,这也通过理论分析结合各种驱动方法得以确定。具体而言,在二维平台中,通过7.2kHz的低频下13Vpp的体声波与30V的液晶回流效应相结合,获得了聚苯乙烯颗粒的最大移动速度(68.78μm/s)。还通过使用聚苯乙烯颗粒作为演示的可编程逻辑控制模型实现了三维中的精确位置操控。此外,与液晶溶液混合的红细胞与各种换能器组合产生的正弦信号一起排列成一条线或聚集在体声波力的压力节点处。因此,证实了诱导液晶回流效应力的液晶溶液可以提高二维和三维平台中的微粒操控效率。所提出的方法将为微粒操控开辟新途径,并有益于细胞分离、药物合成、分析化学等各种应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6cb9/9330138/268d127d21d4/ao2c01783_0002.jpg

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