论文标题

在异步光学驱动的微旋转器中流体动力自旋轨道耦合

Hydrodynamic spin-orbit coupling in asynchronous optically driven micro-rotors

论文作者

Zion, Matan Yah Ben, Modin, Alvin, Chaikin, Paul M.

论文摘要

旋转颗粒的涡流流描述了从分子机到大气动力学的相互作用。然而,迄今为止,通过同步(使用外部磁场)或限制(使用光镊),可以直接观察人造微旋转器之间的流体动力耦合。在这里,我们提出了一个新的活动系统,该系统照亮了自由转子中旋转和翻译的相互作用。我们开发了一个非扭曲的圆形极化光束,同时旋转了数百个二氧化硅涂层的双折射胶体。颗粒在光扭矩场中异步旋转,同时在平面中自由扩散。我们观察到,相邻的颗粒以依赖其自旋的角速度相互轨道。我们在对成对球的stokes限制中得出一个分析模型,该模型对观察到的动力学进行了定量解释。然后,我们发现低雷诺流体的几何性质导致通用流体动力自旋轨道耦合。我们的发现对于远程平衡材料的理解和发展具有重要意义。

Vortical flows of rotating particles describe interactions ranging from molecular machines to atmospheric dynamics. Yet to date, direct observation of the hydrodynamic coupling between artificial micro-rotors has been restricted by the details of the chosen drive, either through synchronization (using external magnetic fields) or confinement (using optical tweezers). Here we present a new active system that illuminates the interplay of rotation and translation in free rotors. We developed a non-tweezing circularly polarized beam that simultaneously rotates hundreds of silica-coated birefringent colloids. The particles rotate asynchronously in the optical torque field while freely diffusing in the plane. We observe that neighboring particles orbit each other with an angular velocity that depends on their spins. We derive an analytical model in the Stokes limit for pairs of spheres that quantitatively explains the observed dynamics. We then find that the geometrical nature of the low Reynolds fluid results in a universal hydrodynamic spin-orbit coupling. Our findings are of significance for the understanding and development of far-from-equilibrium materials.

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