聚焦光涡旋和线性偏振平面波时的自旋霍尔效应

IF 1 Q4 OPTICS
V. V. Kotlyar, S. S. Stafeev, A. M. Telegin, E. S. Kozlova
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引用次数: 0

摘要

研究了具有线性极化的平面波与具有拓扑电荷(TC) m且具有相同线性极化的沿水平方向的光涡旋叠加的尖锐聚焦问题。应用Richards-Wolf公式,导出了光强和自旋角动量在焦平面纵向分量的解析公式。证明了对于奇数和偶数tc m, SAM和强度具有不同的对称性:对于偶数m,它们围绕两个笛卡尔轴对称,而对于奇数m,它们仅围绕垂直轴对称。强度模式在焦平面上有2m的局部最大值。对于任何TC m,光轴上的强度都是非零的。纵向自旋密度在焦平面上有2个(m + 2)亚波长区,其中一半的SAM值为正值,另一半的SAM值为负值。这些区域的中心交替地位于一定半径的圆上,中心在光轴上。这种带有不同符号的自旋图案显示了焦平面上的自旋霍尔效应。总负旋和正旋在焦平面上是相互补偿的,等于零。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Spin Hall Effect While Focusing an Optical Vortex and a Plane Wave with Linear Polarisations

Spin Hall Effect While Focusing an Optical Vortex and a Plane Wave with Linear Polarisations

The sharp focusing of the superposition of a plane wave with the linear polarisation (LP) and an optical vortex with topological charge (TC) m and with the same LP directed along the horizontal axis is considered. Applying the Richards–Wolf formalism, analytical formulas are derived for the intensity and the spin angular momentum (SAM) lengthwise component in the focal plane. It is demonstated that for odd and even TCs m the SAM and the intensity have different symmetries: for even m they are symmetric about both Cartesian axes, and for odd m they are symmetric only about the vertical axis. The intensity pattern has 2m local maxima in the focal plane. The intensity on the optical axis for any TC m is nonzero. The pattern of the lengthwise SAM (spin density) in the focal plane has 2(m + 2) subwavelength areas in the half of which the SAM has positive value while in others it has negative value. The centers of these areas alternately lie on a circle of a certain radius with a center on the optical axis. This spin pattern with different signs shows the spin Hall effect in the focal plane. The total negative and positive spin in the focal plane are mutually compensated and equal to zero.

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来源期刊
CiteScore
1.50
自引率
11.10%
发文量
25
期刊介绍: The journal covers a wide range of issues in information optics such as optical memory, mechanisms for optical data recording and processing, photosensitive materials, optical, optoelectronic and holographic nanostructures, and many other related topics. Papers on memory systems using holographic and biological structures and concepts of brain operation are also included. The journal pays particular attention to research in the field of neural net systems that may lead to a new generation of computional technologies by endowing them with intelligence.
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