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用于片上集成泵和攀爬机器人的异时微纤毛

Metachronal μ-Cilia for On-Chip Integrated Pumps and Climbing Robots.

作者信息

Zhang Shuaizhong, Cui Zhiwei, Wang Ye, den Toonder Jaap

机构信息

Microsystems Section, Department of Mechanical Engineering, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.

Institute for Complex Molecular Systems (ICMS), Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.

出版信息

ACS Appl Mater Interfaces. 2021 May 5;13(17):20845-20857. doi: 10.1021/acsami.1c03009. Epub 2021 Apr 22.

Abstract

Biological cilia often perform metachronal motion, that is, neighboring cilia move out of phase creating a travelling wave, which enables highly efficient fluid pumping and body locomotion. Current methods for creating metachronal artificial cilia suffer from the complex design and sophisticated actuation schemes. This paper demonstrates a simple method to realize metachronal microscopic magnetic artificial cilia (μMAC) through control over the paramagnetic particle distribution within the μMAC based on their tendency to align with an applied magnetic field. Actuated by a 2D rotating uniform magnetic field, the metachronal μMAC enable strong microfluidic pumping and soft robot locomotion. The metachronal μMAC induce twice the pumping efficiency and 3 times the locomotion speed of synchronously moving μMAC. The ciliated soft robots show an unprecedented slope climbing ability (0 to 180°), and they display strong cargo-carrying capacity (>10 times their own weight) in both dry and wet conditions. These findings advance the design of on-chip integrated pumps and versatile soft robots, among others.

摘要

生物纤毛通常进行相继运动,即相邻纤毛异相运动从而产生行波,这使得流体泵送和身体移动高效进行。当前用于制造相继人工纤毛的方法存在设计复杂和驱动方案精密的问题。本文展示了一种简单方法,通过基于顺磁性粒子与外加磁场对齐的倾向来控制其在微观磁性人工纤毛(μMAC)内的分布,从而实现相继微观磁性人工纤毛(μMAC)。由二维旋转均匀磁场驱动,相继μMAC能够实现强大的微流体泵送和软体机器人移动。相继μMAC的泵送效率是同步移动μMAC的两倍,移动速度是其三倍。有纤毛的软体机器人展现出前所未有的爬坡能力(0至180°),并且在干燥和潮湿条件下都表现出强大的载物能力(大于自身重量的10倍)。这些发现推动了片上集成泵和多功能软体机器人等的设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e69a/8153535/f70fcbbee384/am1c03009_0002.jpg

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