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基于带隙等离子体的超表面实现对反射光的全控制。

Gap plasmon-based metasurfaces for total control of reflected light.

机构信息

Department of Technology and Innovation, University of Southern Denmark, Niels Bohrs Allé 1, DK-5230 Odense M, Denmark.

出版信息

Sci Rep. 2013;3:2155. doi: 10.1038/srep02155.

Abstract

In the quest to miniaturise photonics, it is of paramount importance to control light at the nanoscale. We reveal the main physical mechanism responsible for operation of gap plasmon-based gradient metasurfaces, comprising a periodic arrangement of metal nanobricks, and suggest that two degrees of freedom in the nanobrick geometry allow one to independently control the reflection phases of orthogonal light polarisations. We demonstrate, both theoretically and experimentally, how orthogonal linear polarisations of light at wavelengths close to 800 nm can be manipulated independently, efficiently and in a broad wavelength range by realising polarisation beam splitters and polarisation-independent beam steering, showing at the same time the robustness of metasurface designs towards fabrication tolerances. The presented approach establishes a new class of compact optical components, viz., plasmonic metasurfaces with controlled gradient birefringence, with no dielectric counterparts. It can straightforwardly be adapted to realise new optical components with hitherto inaccessible functionalities.

摘要

在光子学小型化的探索中,控制光在纳米尺度上的行为至关重要。我们揭示了基于间隙等离子体的梯度超表面(由周期性排列的金属纳米砖组成)工作的主要物理机制,并提出纳米砖几何形状的两个自由度可允许独立控制正交光偏振的反射相。我们通过理论和实验证明,如何通过实现偏振分束器和偏振独立光束转向,在接近 800nm 的波长处,以高效率和宽波长范围独立地操纵近红外光的正交线性偏振,同时展示了超表面设计对制造容差的稳健性。所提出的方法建立了一类新的紧凑型光学元件,即具有可控梯度双折射的等离子体超表面,没有介电对应物。它可以直接适应于实现具有前所未有的功能的新型光学元件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c54/3703605/efa0aab05a29/srep02155-f1.jpg

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