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通过全介质超表面生成高均匀性和高分辨率的贝塞尔光束阵列。

Generation of high-uniformity and high-resolution Bessel beam arrays through all-dielectric metasurfaces.

作者信息

Chen Lei, Kanwal Saima, Yu Binbin, Feng Jijun, Tao Chunxian, Wen Jing, Zhang Dawei

机构信息

Engineering Research Center of Optical Instrument and Systems, Ministry of Education and Shanghai Key Lab of Modern Optical System, University of Shanghai for Science and Technology, No. 516 Jun Gong Road, Shanghai 200093, China.

Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou, Zhejiang 325000, China.

出版信息

Nanophotonics. 2022 Jan 11;11(5):967-977. doi: 10.1515/nanoph-2021-0603. eCollection 2022 Feb.

Abstract

Bessel beam arrays are progressively attracting attention in recent years due to their remarkable non-diffracting nature and parallel manipulation capabilities in diverse applications. However, the poor phase discretization of conventional approaches such as spatial light modulators leads to low numerical aperture (NA) beam arrays due to the limitation imposed by the Nyquist sampling theorem and poor uniformity of the beam intensity. The key contribution of this study is to experimentally demonstrate the generation of high-uniformity and high-resolution Bessel beam arrays by utilizing all-dielectric metasurfaces. This is attained by optimizing the design of the supercell of a Dammann grating, particularly decreasing each supercell of the grating to a proper size. We demonstrate a 4 × 4 array of Bessel beams with a subwavelength transverse dimension (570 nm, ∼0.9) and a large NA of 0.4 for each beam in the array, while maintaining a relatively high uniformity intensity (52.40%) for the array. Additionally, the Bessel beam arrays are generated in a broadband range through the proposed all-dielectric metasurfaces. Our results are of great significance and particularly useful for applications of metasurface-based Bessel beam arrays in multidisciplinary fields such as laser fabrication, biomedical imaging, data storage, and multi-particle trapping.

摘要

近年来,贝塞尔光束阵列因其显著的无衍射特性以及在各种应用中的并行操纵能力而逐渐受到关注。然而,诸如空间光调制器等传统方法的相位离散性较差,由于奈奎斯特采样定理的限制以及光束强度的均匀性较差,导致数值孔径(NA)较低的光束阵列。本研究的关键贡献在于通过利用全介质超表面,实验证明了高均匀性和高分辨率贝塞尔光束阵列的产生。这是通过优化达曼光栅超单元的设计来实现的,特别是将光栅的每个超单元减小到合适的尺寸。我们展示了一个4×4的贝塞尔光束阵列,其横向尺寸为亚波长(570 nm,约为0.9),阵列中的每个光束具有0.4的大数值孔径,同时保持阵列相对较高的强度均匀性(52.40%)。此外,通过所提出的全介质超表面在宽带范围内产生了贝塞尔光束阵列。我们的结果具有重要意义,对于基于超表面的贝塞尔光束阵列在激光制造、生物医学成像、数据存储和多粒子捕获等多学科领域的应用特别有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa64/11501921/02887549af0d/j_nanoph-2021-0603_fig_001.jpg

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