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基于摩擦纳米发电机收集旋转能量的用于微流控的自供电液滴操纵系统。

Self-powered droplet manipulation system for microfluidics based on triboelectric nanogenerator harvesting rotary energy.

作者信息

Yu Junjie, Wei Xiaoxiang, Guo Yuanchao, Zhang Ziwei, Rui Pinshu, Zhao Yan, Zhang Wen, Shi Shiwei, Wang Peihong

机构信息

School of Physics and Materials Science, Energy Materials and Devices Key Lab of Anhui Province for Photoelectric Conversion, Anhui University, Hefei, 230601, P. R. China.

出版信息

Lab Chip. 2021 Jan 21;21(2):284-295. doi: 10.1039/d0lc00994f. Epub 2021 Jan 13.

Abstract

Microfluidic technology, as a method for manipulating tiny fluids, has the advantages of low sample consumption, fast reaction, and no cross-contamination. In a microfluidic system, accurate manipulation of droplets is a crucial technology that has been widely investigated. In this work, a self-powered droplet manipulation system (SDMS) is proposed to realize various droplet operations, including moving, splitting, merging, mixing, transporting chemicals and reacting. The SDMS is mainly composed of a triboelectric nanogenerator (TENG), an electric brush, and a microfluidic device. The TENG serves as a high-voltage source to power the system. Using different electric brushes and microfluidic devices, different manipulations of droplets can be achieved. Moreover, by experiments and simulations, the influence of the electrode width, the electrode gap and the central angle of one electrode on the performance of SDMS is analyzed in detail. Firstly, by using electrowetting-on-dielectric (EWOD) technology, SDMS can accurately control droplets for long-distance linear movement and simultaneously control multiple droplets to move in a circular electrode track consisting of 40 electrodes. SDMS can also manipulate two droplets of different components to merge and react. In addition, using dielectrophoresis (DEP) technology, SDMS can separate droplets with maximum volumes of 400 μL and reduce the time of the complete mixing of two droplets with different components by 6.3 times compared with the passive mixing method. Finally, the demonstration shows that a droplet can be manipulated by hand power for chemical delivery and chemical reactions on a circular electrode track without an external power source, which proves the applicability of SDMS as an open-surface microfluidic device. Therefore, the self-powered droplet manipulation system proposed in this work may have great application in the fields of drug delivery, micro chemical reactions, and biological microanalysis.

摘要

微流控技术作为一种操纵微小流体的方法,具有样品消耗低、反应快且无交叉污染的优点。在微流控系统中,对液滴进行精确操纵是一项已得到广泛研究的关键技术。在这项工作中,提出了一种自供电液滴操纵系统(SDMS),以实现各种液滴操作,包括移动、分裂、合并、混合、输送化学物质和反应。SDMS主要由摩擦纳米发电机(TENG)、电刷和微流控装置组成。TENG用作高压源为系统供电。通过使用不同的电刷和微流控装置,可以实现对液滴的不同操纵。此外,通过实验和模拟,详细分析了一个电极的电极宽度、电极间隙和圆心角对SDMS性能的影响。首先,通过使用介电电泳(EWOD)技术,SDMS可以精确控制液滴进行长距离直线移动,并同时控制多个液滴在由40个电极组成的圆形电极轨道上移动。SDMS还可以操纵两个不同成分的液滴进行合并和反应。此外,利用介电电泳(DEP)技术,SDMS可以分离最大体积为400 μL的液滴,并且与被动混合方法相比,可将两个不同成分液滴完全混合的时间缩短6.3倍。最后,演示表明,无需外部电源,通过手动操作即可在圆形电极轨道上对液滴进行化学输送和化学反应,这证明了SDMS作为一种开放式表面微流控装置的适用性。因此,这项工作中提出的自供电液滴操纵系统可能在药物输送、微化学反应和生物微分析等领域具有巨大的应用价值。

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