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首页> 外文期刊>Nature Materials >Structured light enables biomimetic swimming and versatile locomotion of photoresponsive soft microrobots
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Structured light enables biomimetic swimming and versatile locomotion of photoresponsive soft microrobots

机译:结构化的光线使仿生游泳和光敏软机器人的多功能运动成为可能

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摘要

Microorganisms move in challenging environments by periodic changes in body shape. In contrast, current artificial microrobots cannot actively deform, exhibiting at best passive bending under external fields. Here, by taking advantage of the wireless, scalable and spatiotemporally selective capabilities that light allows, we show that soft microrobots consisting of photoactive liquid-crystal elastomers can be driven by structured monochromatic light to perform sophisticated biomimetic motions. We realize continuum yet selectively addressable artificial microswimmers that generate travelling-wave motions to self-propel without external forces or torques, as well as microrobots capable of versatile locomotion behaviours on demand. Both theoretical predictions and experimental results confirm that multiple gaits, mimicking either symplectic or antiplectic metachrony of ciliate protozoa, can be achieved with single microswimmers. The principle of using structured light can be extended to other applications that require microscale actuation with sophisticated spatiotemporal coordination for advanced microrobotic technologies.
机译:微生物通过周期性变化的体形在具有挑战性的环境中移动。相反,当前的人造微型机器人不能主动变形,在外部场下充其量只能表现出被动弯曲。在这里,通过利用光允许的无线,可扩展和时空选择性的功能,我们表明,由光敏液晶弹性体组成的软微型机器人可以由结构化的单色光驱动,以执行复杂的仿生运动。我们实现了连续的,可选择性寻址的人造微游泳器,该微游泳器能够产生行波运动以自我推动而没有外力或扭矩,以及能够根据需要实现多种运动行为的微型机器人。理论预测和实验结果均证实,用单个微游泳器可以实现模仿纤毛原生动物的辛和反麻的同步步态。使用结构光的原理可以扩展到其他需要先进的微型机器人技术进行微型时空协调的微型驱动的应用。

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  • 来源
    《Nature Materials 》 |2016年第6期| 647-653| 共7页
  • 作者单位

    Max Planck Institute for Intelligent Systems, 70569 Stuttgart, Germany;

    Max Planck Institute for Intelligent Systems, 70569 Stuttgart, Germany;

    Department of Applied Mathematics and Theoretical Physics, Centre for Mathematical Sciences, University of Cambridge, Cambridge CB3 0WA, UK;

    Max Planck Institute for Intelligent Systems, 70569 Stuttgart, Germany;

    Max Planck Institute for Intelligent Systems, 70569 Stuttgart, Germany,Institute of Bioengineering, Ecole Polytechnique Federale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland;

    European Laboratory for Non Linear Spectroscopy (LENS), University of Florence, 50019 Sesto Fiorentino, Italy;

    European Laboratory for Non Linear Spectroscopy (LENS), University of Florence, 50019 Sesto Fiorentino, Italy,CNR-INO, 50019 Sesto Fiorentino, Italy;

    European Laboratory for Non Linear Spectroscopy (LENS), University of Florence, 50019 Sesto Fiorentino, Italy;

    Max Planck Institute for Intelligent Systems, 70569 Stuttgart, Germany;

    Institut fuer Physikalische Chemie, Universitaet Stuttgart, 70569 Stuttgart, Germany;

    Institut fuer Physikalische Chemie, Universitaet Stuttgart, 70569 Stuttgart, Germany;

    European Laboratory for Non Linear Spectroscopy (LENS), University of Florence, 50019 Sesto Fiorentino, Italy;

    Department of Applied Mathematics and Theoretical Physics, Centre for Mathematical Sciences, University of Cambridge, Cambridge CB3 0WA, UK;

    Max Planck Institute for Intelligent Systems, 70569 Stuttgart, Germany,Institut fuer Physikalische Chemie, Universitaet Stuttgart, 70569 Stuttgart, Germany;

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