Magnetic cilia carpets with programmable metachronal waves

被引:0
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作者
Hongri Gu
Quentin Boehler
Haoyang Cui
Eleonora Secchi
Giovanni Savorana
Carmela De Marco
Simone Gervasoni
Quentin Peyron
Tian-Yun Huang
Salvador Pane
Ann M. Hirt
Daniel Ahmed
Bradley J. Nelson
机构
[1] Institute of Robotics and Intelligent System,
[2] ETH Zurich,undefined
[3] Institute of Environmental Engineering,undefined
[4] ETH Zurich,undefined
[5] ICube Lab,undefined
[6] UDS-CNRS-INSA,undefined
[7] FEMTO-ST Institute,undefined
[8] Université Bourgogne,undefined
[9] Franche Comte,undefined
[10] CNRS,undefined
[11] Institute of Geophysics,undefined
[12] ETH Zurich,undefined
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摘要
Metachronal waves commonly exist in natural cilia carpets. These emergent phenomena, which originate from phase differences between neighbouring self-beating cilia, are essential for biological transport processes including locomotion, liquid pumping, feeding, and cell delivery. However, studies of such complex active systems are limited, particularly from the experimental side. Here we report magnetically actuated, soft, artificial cilia carpets. By stretching and folding onto curved templates, programmable magnetization patterns can be encoded into artificial cilia carpets, which exhibit metachronal waves in dynamic magnetic fields. We have tested both the transport capabilities in a fluid environment and the locomotion capabilities on a solid surface. This robotic system provides a highly customizable experimental platform that not only assists in understanding fundamental rules of natural cilia carpets, but also paves a path to cilia-inspired soft robots for future biomedical applications.
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