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一种新型的基于片上液态金属的微阀。

A Novel On-Chip Liquid-Metal-Enabled Microvalve.

作者信息

Gong Jiahao, Wang Qifu, Liu Bingxin, Zhang Huimin, Gui Lin

机构信息

Liquid Metal and Cryogenic Biomedical Research Center, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, 29 Zhongguancun East Road, Haidian District, Beijing 100019, China.

School of Future Technology, University of Chinese Academy of Sciences, 19 Yuquan Road, Shijingshan District, Beijing 100039, China.

出版信息

Micromachines (Basel). 2021 Aug 30;12(9):1051. doi: 10.3390/mi12091051.

Abstract

A room temperature liquid metal-based microvalve has been proposed in this work. The microvalve has the advantages of easy fabrication, high flexibility, and a low leak rate. By designing a posts array in the channel, the liquid metal can be controlled to form a deformable valve boss and block the flow path. Besides, through adjustment of the pressure applied to the liquid metal, the microvalve can perform reliable switching commands. To eliminate the problem that liquid metal is easily oxidized, which causes the microvalve to have poor repeatability, a method of electrochemical cathodic protection has been proposed, which significantly increases the number of open/close switch cycles up to 145. In addition, this microvalve overcomes the shortcomings of the traditional microvalve that requires an alignment process to assemble all the parts. When the valve is closed, no leak rate is detected at ≤320 mbar, and the leak rate is ≤0.043 μL/min at 330 mbar, which indicates it has good tightness. As an application, we also fabricate a chip that can control bubble flow based on this microvalve. Therefore, this microvalve has great prospects in the field of microfluidics.

摘要

在这项工作中提出了一种基于室温液态金属的微阀。该微阀具有易于制造、高灵活性和低泄漏率的优点。通过在通道中设计柱阵列,可以控制液态金属形成可变形的阀凸台并阻塞流动路径。此外,通过调节施加到液态金属上的压力,微阀可以执行可靠的切换指令。为了消除液态金属容易被氧化从而导致微阀重复性差的问题,提出了一种电化学阴极保护方法,该方法显著增加了开/关切换循环次数,高达145次。此外,这种微阀克服了传统微阀需要对准过程来组装所有部件的缺点。当阀门关闭时,在≤320毫巴时未检测到泄漏率,在330毫巴时泄漏率≤0.043微升/分钟,这表明它具有良好的密封性。作为一种应用,我们还基于这种微阀制造了一个可以控制气泡流的芯片。因此,这种微阀在微流体领域具有广阔的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f95/8467270/03a91d92e388/micromachines-12-01051-g001.jpg

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