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Rational design and dynamics of self-propelled colloidal bead chains: from rotators to flagella

机译:自推进胶体珠链的合理设计和动力学:从旋转子到鞭毛

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摘要

The quest for designing new self-propelled colloids is fuelled by the demand for simple experimental models to study the collective behaviour of their more complex natural counterparts. Most synthetic self-propelled particles move by converting the input energy into translational motion. In this work we address the question if simple self-propelled spheres can assemble into more complex structures that exhibit rotational motion, possibly coupled with translational motion as in flagella. We exploit a combination of induced dipolar interactions and a bonding step to create permanent linear bead chains, composed of self-propelled Janus spheres, with a well-controlled internal structure. Next, we study how flexibility between individual swimmers in a chain can affect its swimming behaviour. Permanent rigid chains showed only active rotational or spinning motion, whereas longer semi-flexible chains showed both translational and rotational motion resembling flagella like-motion, in the presence of the fuel. Moreover, we are able to reproduce our experimental results using numerical calculations with a minimal model, which includes full hydrodynamic interactions with the fluid. Our method is general and opens a new way to design novel self-propelled colloids with complex swimming behaviours, using different complex starting building blocks in combination with the flexibility between them.
机译:对设计新的自推进胶体的追求是由对简单的实验模型进行研究,以研究其更复杂的天然胶体的集体行为的。大多数合成的自推进粒子通过将输入能量转换为平移运动而移动。在这项工作中,我们解决了以下问题:简单的自推进球体是否可以组装成更复杂的结构,从而表现出旋转运动,并可能与鞭毛一样平移。我们利用诱导的偶极相互作用和键合步骤的组合来创建永久性线性珠链,该链由自推进式Janus球组成,内部结构可控。接下来,我们研究链中各个游泳者之间的柔韧性如何影响其游泳行为。永久刚性链仅表现出主动的旋转或旋转运动,而较长的半柔性链则在存在燃料的情况下表现出类似于鞭毛状运动的平移和旋转运动。此外,我们能够使用具有最小模型的数值计算来重现我们的实验结果,其中包括与流体的完全流体动力学相互作用。我们的方法是通用的,它为设计具有复杂游泳行为的新型自推进胶体开辟了一条新途径,即使用不同的复杂起始构件并结合它们之间的灵活性。

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