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含各向异性缺陷的一维光子晶体中自旋轨道相互作用的增强及近乎完美的自旋反转效率

Enhancement of spin-orbit interaction and nearly perfect spin-reversed efficiency in a one-dimensional photonic crystal containing an anisotropic defect.

作者信息

Wang Xianjun, Liu Yufu, Li Yunlin, Lai Zhen, Wang Xuezhi, Zhang Haoran, Jiang Xunya

出版信息

Opt Express. 2025 Feb 10;33(3):6404-6420. doi: 10.1364/OE.546928.

Abstract

Although the defect modes of photonic crystals (PhCs) have been intensively investigated to enhance the interactions between light and special materials, e.g., nonlinear material for switches or gain material for lasers, the enhancement of photonic spin-orbit interaction (SOI) by the defect modes has not been well studied so far. In this work, based on the PhCs containing the anisotropic-material defect, we find rich and new phenomena for such systems from the enhanced SOI, such as the high vortex-conversion efficiency and saturation at 50 for the Gaussian beam, the large photonic spin Hall effect (PSHE) for obliquely incident beam beyond the Brewster angle and the nearly complete spin-reversed efficiency when we tune the different-order defect modes of  - and  - waves to coincide together. New mechanisms are also revealed, such as the very different sensitivity to the incident angle for the resonant frequencies of the defect modes of  - and  -waves, the tunable sensitivity by choosing proper cell-number of PhCs for different designs, and the near -phase jump between different-order defect modes. The hybrid of these new mechanisms is the novel resource of these new phenomena beyond traditional systems. Besides the theoretical importance, these new mechanisms from the defect modes of PhCs can also be widely used to design extremely compacted SOI devices, such as the vortex beam or spin-reverse generators and spin-sensitive detectors.

摘要

尽管为了增强光与特殊材料(例如用于开关的非线性材料或用于激光器的增益材料)之间的相互作用,人们对光子晶体(PhC)的缺陷模式进行了深入研究,但到目前为止,利用缺陷模式增强光子自旋 - 轨道相互作用(SOI)的研究还不够充分。在这项工作中,基于包含各向异性材料缺陷的光子晶体,我们从增强的SOI中发现了这类系统丰富的新现象,比如高斯光束具有高涡旋转换效率且在50时达到饱和,对于斜入射光束在布鲁斯特角之外有大的光子自旋霍尔效应(PSHE),以及当我们将不同阶的 - 波和 - 波缺陷模式调谐到重合时几乎完全的自旋反转效率。还揭示了新的机制,例如 - 波和 - 波缺陷模式的共振频率对入射角的敏感性差异很大,通过为不同设计选择合适的光子晶体元胞数可实现可调谐敏感性,以及不同阶缺陷模式之间的近相位跃变。这些新机制的混合是这些超越传统系统的新现象的新颖来源。除了理论重要性之外,来自光子晶体缺陷模式的这些新机制还可广泛用于设计极其紧凑的SOI器件,例如涡旋光束或自旋反转发生器以及自旋敏感探测器。

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