在阶跃相位色散补偿层上复用元原子的高性能消色差平面透镜

IF 20.6 Q1 OPTICS
Jingen Lin, Jinbei Chen, Jianchao Zhang, Haowen Liang, Juntao Li, Xue-Hua Wang
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引用次数: 0

摘要

平面光学由于其在操纵光波特性方面的灵活性而吸引了人们几十年的兴趣,这使得庞大的光学组件小型化成为集成的平面组件。消色差平面透镜的最新进展在各个领域显示出了良好的应用前景。然而,对于具有高数值孔径的消色差平面透镜来说,同时实现宽带宽和扩大孔径是一个巨大的挑战。在这里,我们提出了元原子在逐步相位色散补偿(SPDC)层上的区分复用来解决上述挑战。原则上,不受消色差带宽的限制,通过增加SPDC层中心区和边缘区之间的光学厚度差,可以自由地扩大孔径大小。SPDC层还可以作为衬底,使器件更薄。实验获得了两个500 nm厚度、带宽650-1000 nm的消色差平面透镜:一个数值孔径0.9、半径20.1µm,另一个数值孔径0.7、半径30.0µm。据我们所知,它们是宽带消色差平面透镜,具有最高的数值孔径,最大的孔径尺寸和最薄的厚度。通过白光照明也证明了1.10微米分辨率的显微成像,超过了以前报道的由消色差超透镜和多级衍射透镜获得的分辨率。这些前所未有的性能标志着平面透镜的实际应用迈出了实质性的一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High-performance achromatic flat lens by multiplexing meta-atoms on a stepwise phase dispersion compensation layer

High-performance achromatic flat lens by multiplexing meta-atoms on a stepwise phase dispersion compensation layer

Flat optics have attracted interest for decades due to their flexibility in manipulating optical wave properties, which allows the miniaturization of bulky optical assemblies into integrated planar components. Recent advances in achromatic flat lenses have shown promising applications in various fields. However, it is a significant challenge for achromatic flat lenses with a high numerical aperture to simultaneously achieve broad bandwidth and expand the aperture sizes. Here, we present the zone division multiplex of the meta-atoms on a stepwise phase dispersion compensation (SPDC) layer to address the above challenge. In principle, the aperture size can be freely enlarged by increasing the optical thickness difference between the central and marginal zones of the SPDC layer, without the limit of the achromatic bandwidth. The SPDC layer also serves as the substrate, making the device thinner. Two achromatic flat lenses of 500 nm thickness with a bandwidth of 650–1000 nm are experimentally achieved: one with a numerical aperture of 0.9 and a radius of 20.1 µm, and another with a numerical aperture of 0.7 and a radius of 30.0 µm. To the best of our knowledge, they are the broadband achromatic flat lenses with highest numerical apertures, the largest aperture sizes and thinnest thickness reported so far. Microscopic imaging with a 1.10 µm resolution has also been demonstrated by white light illumination, surpassing any previously reported resolution attained by achromatic metalenses and multi-level diffractive lenses. These unprecedented performances mark a substantial step toward practical applications of flat lenses.

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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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