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Polarization conversion when focusing cylindrically polarized vortex beams

机译:聚焦圆柱偏振涡流时的极化转换

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Currently, cylindrical beams with radial or azimuthal polarization are being used successfully for the optical manipulation of micro- and nano-particles as well as in microscopy, lithography, nonlinear optics, materials processing, and telecommunication applications. The creation of these laser beams is carried out using segmented polarizing plates, subwavelength gratings, interference, or light modulators. Here, we demonstrate the conversion of cylindrically polarized laser beams from a radial to an azimuthal polarization, or vice versa, by introducing a higher-order vortex phase singularity. To simultaneously generate several vortex phase singularities of different orders, we utilized a multi-order diffractive optical element. Both the theoretical and the experimental results regarding the radiation transmitted through the diffractive optical element show that increasing the order of the phase singularity leads to more efficient conversation of the polarization from radial to azimuthal. This demonstrates a close connection between the polarization and phase states of electromagnetic beams, which has important implications in many optical experiments.
机译:目前,具有径向或方位角偏振的圆柱形光束用于微型和纳米粒子的光学操纵以及显微镜,光刻,非线性光学,材料处理和电信应用。使用分段偏振片,亚波长光栅,干扰或光调制器进行这些激光束的产生。这里,我们通过引入高阶涡流相位奇异性,证明了圆柱偏振激光束从径向到方位角的转换,反之亦然。为了同时产生不同订单的几个涡流相位奇异,我们利用多阶衍射光学元件。关于通过衍射光学元件传递的辐射的理论和实验结果既显示,增加相奇点的顺序导致从径向到方位角的偏振的更有效地对话。这证明了电磁束的极化和相位状态之间的紧密连接,这在许多光学实验中具有重要意义。

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