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Electronically actuated artificial hinged cilia for efficient bidirectional pumping

delete2024-01-01
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OA
AI
W
Wei Wang *
I
Ivan Tanasijević
J
Jinsong Zhang
E
Eric Lauga
I
Itai Cohen *
DOI:10.1039/d4lc00513adelete
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Abstract

Abstract

En 中文
Cilial pumping is a potent mechanism used to control and manipulate fluids on microscales. Recently, we introduced an electronically driven mu-cilial platform that can create arbitrary flow patterns in liquids near a surface with the potential for various engineering applications. This mu-cilial platform, however, utilized the coupling between elasticity and viscous drag to obtain pumping and had several limitations. For example, each cilium could only pump in one direction. Thus, to create bidirectional flows, it was necessary to fabricate and separately actuate two oppositely facing cilia. As another example, the generation of non-reciprocal cilial motions, a necessary condition for pumping at these scales, could only be achieved by matching the elastic stresses inherent in actuating the cilia with the viscous drag forces generated by the flows. This criterion severely restricted the frequency range over which the cilia could be operated and resulted in a small swept area, both of which restricted the volume of fluid being pumped in each cycle. These limitations contrast with the capabilities of natural cilia, which can achieve omnidirectional transport and operation over a broad range of frequencies. In natural cilia, these capabilities arise from their complex internal structure. Inspired by this strategy we designed hinged cilia and show they can achieve bidirectional pumping of larger fluid volumes over a broad range of frequencies. Finally, we demonstrate that even regular arrays of individually controlled hinged cilia can generate a variety of flow patterns using fewer cilia than in previous cilia metasurface designs. An electronically actuated artificial hinged ciliary platform capable of generating efficient bidirectional pumping at the microscale.
Keywords:
BACTERIAL FLAGELLA

Journal

L
Lab on a Chip
IF:
5.4
Papers:
9.0K
Citations:
3.3W

Organization

U
University of Cambridge
Scholars:
7.7W
Papers: 7.1W
Citations: 13.7W
C
Cornell University
Scholars:
6.3W
Papers: 5.4W
Citations: 10.9W