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Light-induced self-assembly of active rectification devices

机译:有源整流装置的光诱导自组装

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摘要

Self-propelled colloidal objects, such as motile bacteria or synthetic microswimmers, have microscopically irreversible individual dynamics—a feature they share with all living systems. The incoherent behavior of individual swimmers can be harnessed (or “rectified”) by microfluidic devices that create systematic motions that are impossible in equilibrium. We present a computational proof-of-concept study showing that such active rectification devices could be created directly from an unstructured “primordial soup” of light-controlled motile particles, solely by using spatially modulated illumination to control their local propulsion speed. Alongside both microscopic irreversibility and speed modulation, our mechanism requires spatial symmetry breaking, such as a chevron light pattern, and strong interactions between particles, such as volume exclusion, which cause a collisional slowdown at high density. Together, we show how these four factors create a novel, many-body rectification mechanism. Our work suggests that standard spatial light modulator technology might allow the programmable, light-induced self-assembly of active rectification devices from an unstructured particle bath.
机译:自走的胶体物体,例如运动细菌或合成微泳者,具有微观上不可逆的个体动力学,这是它们与所有生物系统共有的特征。单个游泳者的不连贯行为可以通过微流体装置加以利用(或“纠正”),这些装置会产生系统性的运动,而这种运动不可能达到平衡。我们提供了一项计算的概念验证研究,表明仅通过使用空间调制照明来控制其局部推进速度,就可以直接从非结构化的光控运动粒子的“原始汤”中创建此类有源整流设备。除了微观不可逆性和速度调节外,我们的机制还需要打破空间对称性(例如人字形灯光图案)以及粒子之间的强相互作用(例如体积排阻),这会导致高密度碰撞减慢。我们共同展示了这四个因素如何创建一种新颖的多体矫正机制。我们的工作表明,标准空间光调制器技术可能允许通过非结构化粒子浴对有源整流设备进行可编程的光诱导自组装。

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