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通过反向传播在三维空间中塑造光。

Shaping light in 3d space by counter-propagation.

作者信息

Droop Ramon, Asché Eric, Otte Eileen, Denz Cornelia

机构信息

Institute of Applied Physics, University of Muenster, Corrensstr. 2/4, 48149, Münster, Germany.

出版信息

Sci Rep. 2021 Sep 9;11(1):18019. doi: 10.1038/s41598-021-97313-4.

Abstract

We extend the established transverse customization of light, in particular, amplitude, phase, and polarization modulation of the light field, and its analysis by the third, longitudinal spatial dimension, enabling the visualization of longitudinal structures in sub-wavelength (nm) range. To achieve this high-precision and three-dimensional beam shaping and detection, we propose an approach based on precise variation of indices in the superposition of higher-order Laguerre-Gaussian beams and cylindrical vector beams in a counter-propagation scheme. The superposition is analyzed experimentally by digital, holographic counter-propagation leading to stable, reversible and precise scanning of the light volume. Our findings show tailored amplitude, phase and polarization structures, adaptable in 3D space by mode indices, including sub-wavelength structural changes upon propagation, which will be of interest for advanced material machining and optical trapping.

摘要

我们扩展了已有的横向光定制技术,特别是光场的幅度、相位和偏振调制,并通过第三个纵向空间维度对其进行分析,从而能够可视化亚波长(纳米)范围内的纵向结构。为了实现这种高精度的三维光束整形和检测,我们提出了一种基于反向传播方案中高阶拉盖尔 - 高斯光束和圆柱矢量光束叠加时折射率精确变化的方法。通过数字全息反向传播对叠加进行实验分析,可实现对光体积的稳定、可逆和精确扫描。我们的研究结果表明,通过模式指数可在三维空间中实现定制的幅度、相位和偏振结构,包括传播过程中亚波长结构的变化,这对于先进材料加工和光镊技术具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f593/8429748/3fa824fbb52e/41598_2021_97313_Fig1_HTML.jpg

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