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手性折叠超表面中的自旋选择性传输

Spin-Selective Transmission in Chiral Folded Metasurfaces.

作者信息

Yang Shengyan, Liu Zhe, Hu Sha, Jin Ai-Zi, Yang Haifang, Zhang Shuang, Li Junjie, Gu Changzhi

机构信息

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics , Chinese Academy of Sciences , Beijing 100190 , China.

School of Physical Sciences, CAS Key Laboratory of Vacuum Physics , University of Chinese Academy of Sciences , Beijing 100049 , China.

出版信息

Nano Lett. 2019 Jun 12;19(6):3432-3439. doi: 10.1021/acs.nanolett.8b04521. Epub 2019 Jan 10.

Abstract

Controlling the spin angular momentum of light (or circular polarization state) plays a crucial role in the modern photonic applications such as optical communication, circular dichroism spectroscopy, and quantum information processing. However, the conventional approaches to manipulate the spin of light require naturally occurring chiral or birefringent materials of bulky sizes due to the weak light-matter interactions. Here we experimentally demonstrate an approach to implement spin-selective transmission in the infrared region based on chiral folded metasurfaces that are capable of transmitting one spin state of light while largely prohibiting the other. Due to the intrinsic chirality of the folded metasurface, a remarkable circular dichroism as large as 0.7 with the maximum transmittance exceeding 92% is experimentally demonstrated. The giant circular dichroism is interpreted within the framework of charge-current multipole expansion. Moreover, the intrinsic chirality can be readily controlled by manipulating the folding angle of the metasurface with respect to the cardinal plane. Benefiting from its strong chirality and spin-dependent transmission characteristics, the proposed folded metasurface may be applied to a range of novel photon-spin selective devices for optical communication technologies and biophotonics.

摘要

控制光的自旋角动量(或圆偏振态)在现代光子学应用中起着至关重要的作用,如光通信、圆二色光谱和量子信息处理。然而,由于光与物质的相互作用较弱,传统的操纵光自旋的方法需要体积较大的天然手性或双折射材料。在此,我们通过实验展示了一种基于手性折叠超表面在红外区域实现自旋选择性传输的方法,该超表面能够传输光的一种自旋态,同时在很大程度上禁止另一种自旋态。由于折叠超表面的固有手性,实验证明了高达0.7的显著圆二色性,最大透过率超过92%。巨大的圆二色性在电荷 - 电流多极展开的框架内得到解释。此外,通过操纵超表面相对于基面的折叠角度,可以很容易地控制固有手性。得益于其强大的手性和自旋相关的传输特性,所提出的折叠超表面可应用于一系列用于光通信技术和生物光子学的新型光子 - 自旋选择性器件。

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