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Controlling the propagation of an optical vortex through two-dimensional ordered and disordered waveguide arrays using topological charge

机译:使用拓扑电荷控制光涡旋通过二维有序无序波导阵列的传播

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摘要

In this paper, we study the propagation of a radially symmetric optical vortex whose amplitude is independent of topological charge in ordered and disordered 2D arrays of coupled waveguides. It is first demonstrated that the topological charge variation affects the beam spreading in the completely ordered arrays. For a low refractive index contrast between waveguides and their surroundings, the effective width at the output end of the optical lattice versus topological charge shows an oscillatory behavior. However, for a higher refractive index contrast, as the topological charge increases from 0 to 10, the effective width reaches a maximum value and then falls. Then, we investigate the effects of topological charge variation on the wave propagation through the waveguide array in the presence of different disorder strengths. Our results here confirm that the behavior of effective width versus the topological charge in the disordered array significantly depends on the average of the refractive index of the waveguides. Although the intensity of the input radially symmetric vortex beam is independent of the topological charge, for low disorder levels, the effective width and intensity distribution at the output end is strongly sensitive to the topological charge or the polar phase of the vortex beam. It is also demonstrated that, for strongly disordered arrays, the effective width and output beam profile shows no considerable change with variation of the topological charge. These effects are due to the discrete diffraction phenomenon and its dependence on the helical wavefront of the optical vortex whose form is determined by the topological charge. Therefore, it is demonstrated here that angular phase affects the beam broadening in an array of coupled optical waveguides. (C) 2016 Optical Society of America
机译:在本文中,我们研究了在耦合波导的有序和无序2D阵列中,其幅度与拓扑电荷无关的径向对称光学涡旋的传播。首先证明拓扑电荷的变化会影响束在完全有序阵列中的扩散。对于波导及其周围环境之间的低折射率对比度,光学晶格输出端的有效宽度与拓扑电荷的关系为振荡行为。但是,对于较高的折射率对比度,当拓扑电荷从0增加到10时,有效宽度达到最大值,然后下降。然后,我们研究在存在不同无序强度的情况下,拓扑电荷变化对通过波导阵列传播的波的影响。我们的结果在此证实无序阵列中有效宽度与拓扑电荷的关系在很大程度上取决于波导的平均折射率。尽管输入的径向对称涡流束的强度与拓扑电荷无关,但对于较低的无序水平,输出端的有效宽度和强度分布对拓扑电荷或涡流束的极性相位非常敏感。还证明了,对于高度无序的阵列,有效宽度和输出光束轮廓不会显示出随着拓扑电荷的变化而发生的显着变化。这些影响归因于离散衍射现象及其对光学涡旋螺旋波前的依赖性,光学涡旋的螺旋形由拓扑电荷决定。因此,在此证明,角相位影响耦合光波导阵列中的光束展宽。 (C)2016美国眼镜学会

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