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镓基液态金属对棘轮的电驱动心跳效应

Electrically driven heartbeat effect of gallium-based liquid metal on a ratchet.

作者信息

Wang Shutong, Zhang Yue, Wang Jiuyang, Ren Dongmei, Yu Zhenwei

机构信息

Shenzhen Institute of Advanced Electronic Materials, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, China.

College of Chemistry and Materials Engineering, Bohai University, Jinzhou, China.

出版信息

Front Bioeng Biotechnol. 2023 Jan 12;10:1094482. doi: 10.3389/fbioe.2022.1094482. eCollection 2022.

Abstract

The realization of the liquid metal heartbeat effect shows better controllability under non-periodic stimuli than spontaneous oscillation or periodic stimuli. However, adjusting the liquid metal heartbeat performance, drop spreading area, and frequency, solely by the magnitude of the voltage, has great limitations. Here, we demonstrate that the eGaIn drop can beat inside graphite ring electrodes under DC voltage in alkaline solutions on ratchet substrates. These sawtooth structures provide asymmetric textures which influence liquid metal deformation during the beating of the heart. We achieved heartbeat frequencies from 2.7 to 4.8 Hz, a 100% increase in the tunable frequency range compared to that on a flat surface. The oxidative spreading of the eGaIn drop on the ratchet substrate shows that the drop penetrates into the grooves of the sawtooth structure. Moreover, we investigated the physical mechanisms affecting the eGaIn heartbeat frequency and the influence on the spreading area of the eGaIn drop at various sawtooth sizes and orientations. These findings not only enhance our understanding of droplet manipulation on sawtooth-structured surfaces but also facilitate the design of microfluidic pump systems.

摘要

液态金属心跳效应的实现表明,在非周期性刺激下,其可控性优于自发振荡或周期性刺激。然而,仅通过电压大小来调节液态金属的心跳性能、液滴扩散面积和频率,存在很大局限性。在此,我们证明了在棘轮基板上的碱性溶液中,直流电压下铟镓合金液滴能在石墨环形电极内跳动。这些锯齿结构提供了不对称纹理,影响心脏跳动过程中液态金属的变形。我们实现了2.7至4.8赫兹的心跳频率,与平面相比,可调频率范围增加了100%。铟镓合金液滴在棘轮基板上的氧化扩散表明,液滴会渗入锯齿结构的凹槽中。此外,我们研究了影响铟镓合金心跳频率的物理机制,以及在各种锯齿尺寸和方向下对铟镓合金液滴扩散面积的影响。这些发现不仅增进了我们对锯齿结构表面上液滴操纵的理解,也有助于微流体泵系统的设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7906/9877452/5b5e6e44415b/fbioe-10-1094482-g001.jpg

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