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The linear-circular polarization transfer in a caustic vector optical field

机译:苛性矢量光场中的线性圆偏振传输

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Manipulating an optical field is especially required when light can be controlled by light itself, with novel properties emerging in connection with the optical beam having complex structures. Research on a structured light and the optical angular momentum has cultivated a new, vigorous and distinctive interdisciplinary area, with strong interest and activity worldwide. In this work, a caustic vector optical field is experimentally generated and demonstrated by the caustic-based approach. In our approach, we enable the caustic vector optical field to be space-variantly modulated in both phase and arbitrary polarization states in the field cross-section with acceleration trajectories during propagation. The optical field propagates in the curve trajectory during propagation due to the effect of the caustic phase. The dynamic inversion of the linear-circular polarization in a caustic vector optical field under free-space propagation is analyzed in detail. The underlying physics of the phenomenon is discussed according to the coherent superposition of the polarization. Our study reveals that the different spin angular momentum flux distributions (including opposite directions) in different positions in the cross-section of the caustic vector optical field can be dynamically managed during propagation by purposely choosing the initial polarization state distribution and the initial caustic phase. This work provides an approach to dynamically manipulate the evolution of the polarization state distribution in the cross-section of an optical field during propagation. The presented approach opens the possibility of multi-manipulating the spin optical angular momentum fluxes and the polarization state in the field cross-section, leading to more complex manipulation of the optical field scenarios, and thus further expanding the functionality of an optical system.
机译:当光可以由光本身控制时,特别需要操纵光场,并且具有与具有复杂结构的光束有关的新颖特性。对结构光和光学角动量的研究已经建立了一个新的,充满活力的和独特的跨学科领域,在世界范围内具有浓厚的兴趣和活动。在这项工作中,通过基于碱的方法实验性地产生并证明了碱的矢量光学场。在我们的方法中,我们使苛性矢量光场在传播过程中具有加速度轨迹的场横截面中的相位和任意偏振态下都可以进行空间可变调制。由于苛性相的影响,光场在传播过程中以曲线轨迹传播。详细分析了在自由空间传播下苛性矢量光场中线性圆偏振的动态反演。根据极化的相干叠加讨论了现象的基本物理原理。我们的研究表明,通过有目的地选择初始偏振态分布和初始苛性相,可以在传播过程中动态管理苛性矢量光场横截面中不同位置的不同自旋角动量通量分布(包括相反的方向)。这项工作提供了一种在传播过程中动态控制光场横截面中偏振态分布演变的方法。提出的方法打开了在场横截面中多重操纵自旋光学角动量通量和偏振态的可能性,从而导致对光学场情形的更复杂操纵,从而进一步扩展了光学系统的功能。

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