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调节自驱动胶体的运动性和方向性。

Tuning the motility and directionality of self-propelled colloids.

作者信息

Gomez-Solano Juan Ruben, Samin Sela, Lozano Celia, Ruedas-Batuecas Pablo, van Roij René, Bechinger Clemens

机构信息

2. Physikalisches Institut, Universität Stuttgart, Pfaffenwaldring 57, 70569, Stuttgart, Germany.

Fachbereich Physik, Universität Konstanz, Konstanz, D-78457, Germany.

出版信息

Sci Rep. 2017 Nov 2;7(1):14891. doi: 10.1038/s41598-017-14126-0.

Abstract

Microorganisms are able to overcome the thermal randomness of their surroundings by harvesting energy to navigate in viscous fluid environments. In a similar manner, synthetic colloidal microswimmers are capable of mimicking complex biolocomotion by means of simple self-propulsion mechanisms. Although experimentally the speed of active particles can be controlled by e.g. self-generated chemical and thermal gradients, an in-situ change of swimming direction remains a challenge. In this work, we study self-propulsion of half-coated spherical colloids in critical binary mixtures and show that the coupling of local body forces, induced by laser illumination, and the wetting properties of the colloid, can be used to finely tune both the colloid's swimming speed and its directionality. We experimentally and numerically demonstrate that the direction of motion can be reversibly switched by means of the size and shape of the droplet(s) nucleated around the colloid, depending on the particle radius and the fluid's ambient temperature. Moreover, the aforementioned features enable the possibility to realize both negative and positive phototaxis in light intensity gradients. Our results can be extended to other types of half-coated microswimmers, provided that both of their hemispheres are selectively made active but with distinct physical properties.

摘要

微生物能够通过收集能量在粘性流体环境中导航,从而克服周围环境的热随机性。以类似的方式,合成胶体微泳器能够通过简单的自推进机制模拟复杂的生物运动。尽管在实验中,活性粒子的速度可以通过例如自生的化学和热梯度来控制,但原位改变游动方向仍然是一个挑战。在这项工作中,我们研究了临界二元混合物中半包覆球形胶体的自推进,并表明由激光照射引起的局部体力与胶体的润湿性之间的耦合,可用于精细调节胶体的游动速度及其方向性。我们通过实验和数值模拟证明,根据粒子半径和流体的环境温度,围绕胶体形成的液滴的大小和形状可使运动方向可逆地切换。此外,上述特性使得在光强梯度中实现负趋光性和正趋光性成为可能。只要其他类型的半包覆微泳器的两个半球都被选择性地激活但具有不同的物理性质,我们的结果就可以扩展到它们。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7726/5668334/8dd663e791b2/41598_2017_14126_Fig1_HTML.jpg

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