Arzola Alejandro V, Villasante-Barahona Mario, Volke-Sepúlveda Karen, Jákl Petr, Zemánek Pavel
Instituto de Física, Universidad Nacional Autónoma de México, Apdo. Postal 20-364, 01000 Cd. México, Mexico.
Institute of Scientific Instruments of CAS, Královopolská 147, 612 64 Brno, Czech Republic.
Phys Rev Lett. 2017 Mar 31;118(13):138002. doi: 10.1103/PhysRevLett.118.138002. Epub 2017 Mar 27.
A fully reconfigurable two-dimensional (2D) rocking ratchet system created with holographic optical micromanipulation is presented. We can generate optical potentials with the geometry of any Bravais lattice in 2D and introduce a spatial asymmetry with arbitrary orientation. Nontrivial directed transport of Brownian particles along different directions is demonstrated numerically and experimentally, including on axis, perpendicular, and oblique with respect to an unbiased ac driving. The most important aspect to define the current direction is shown to be the asymmetry and not the driving orientation, and yet we show a system in which the asymmetry orientation of each potential well does not coincide with the transport direction, suggesting an additional symmetry breaking as a result of a coupling with the lattice configuration. Our experimental device, due to its versatility, opens up a new range of possibilities in the study of nonequilibrium dynamics at the microscopic level.
本文介绍了一种利用全息光学微操纵创建的完全可重构二维(2D)摇摆棘轮系统。我们可以生成具有二维任意布拉菲晶格几何形状的光学势,并引入任意取向的空间不对称性。通过数值和实验证明了布朗粒子沿不同方向的非平凡定向输运,包括相对于无偏交流驱动的轴向、垂直和倾斜方向。结果表明,定义电流方向的最重要因素是不对称性而非驱动取向,然而我们展示了一个系统,其中每个势阱的不对称取向与输运方向不一致,这表明由于与晶格构型的耦合导致了额外的对称性破缺。我们的实验装置因其多功能性,为微观层面非平衡动力学的研究开辟了一系列新的可能性。