Vortex interactions revisited: Formation of stable elementary cells for creation of rigid vortex lattices

L. Stoyanov, N. Gorunski, M. Zhekova, I. Stefanov, A. Dreischuh
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引用次数: 3

Abstract

Optical vortices (OVs) are the only known truly two-dimensional phase dislocations. Because of their spiral phase fronts, the OV interaction results, in the simplest case (when two OVs are presented), in vortex mutual attraction/repulsion or in OV pair rotation. In this work we provide experimental evidences that a stable elementary cell forming the base for a large optical vortex lattice can be created by situating equally and singly charged OVs in the apices of a triangle and square and by nesting an additional control OV with an opposite unit charge in the center of the structure. Experimental data for the rotation of these triangular and quadratic elementary cells vs. OV-to-OV separation as well as the rotation of the same structures vs. propagation distance are presented. Generation and stable propagation of large rigid square-shaped and hexagonal OV lattices is demonstrated.
涡旋相互作用重访:形成刚性涡旋晶格的稳定基本单元
光涡旋(OVs)是唯一已知的真正的二维相位错。由于它们的螺旋相位前沿,在最简单的情况下(当存在两个OV时),OV相互作用导致涡旋相互吸引/排斥或OV对旋转。在这项工作中,我们提供了实验证据,证明通过在三角形和正方形的顶端放置等电荷和单电荷的OV,并在结构的中心嵌套一个具有相反单位电荷的额外控制OV,可以创建一个稳定的基本单元,形成大型光学涡旋晶格的基础。给出了这些三角形和二次基元的旋转相对于OV-to-OV分离的实验数据,以及相同结构的旋转相对于传播距离的实验数据。证明了大型刚性方形和六边形OV晶格的生成和稳定传播。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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