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实现高效波前操控和可逆手性传输的单层相变超表面。

Single-layered phase-change metasurfaces achieving efficient wavefront manipulation and reversible chiral transmission.

作者信息

Huang Yijia, Xiao Tianxiao, Xie Zhengwei, Zheng Jie, Su Yarong, Chen Weidong, Liu Ke, Tang Mingjun, Zhu Jianqi, Li Ling

出版信息

Opt Express. 2022 Jan 17;30(2):1337-1350. doi: 10.1364/OE.447545.

Abstract

Efficient control of the phase and polarization of light is of significant importance in modern optics and photonics. However, traditional methods are often accompanied with cascaded and bulky designs that cannot fulfill the ongoing demand for further integrations. Here, a single-layered metasurface composed of nonvolatile phase-change material GeSbSeTe (GSST) is proposed with tunable spin-orbit interactions in subwavelength scale. According to the spin-dependent destructive or constructive interference, asymmetric transmission for circularly polarized incidence (extinction ratio > 8:1) can be achieved when GSST is in an amorphous state. Moreover, when GSST changes to crystalline state, reversed chiral transmission (extinction ratio > 12:1) can be observed due to the existence of intrinsic chirality. In addition, as the average cross-polarized transmitted amplitude is larger than 85%, arbitrary wavefront manipulations can be achieved in both states simultaneously based on the theory of Pancharatnam-Berry phase. As a proof of concept, several functional metasurface devices are designed and characterized to further demonstrate the validation of our design methodology. It is believed that these multifunctional devices with ultrahigh compactness are promising for various applications including chiroptical spectroscopy, EM communication, chiral imaging, and information encryption.

摘要

在现代光学和光子学中,对光的相位和偏振进行有效控制具有重要意义。然而,传统方法往往伴随着级联且庞大的设计,无法满足对进一步集成的持续需求。在此,提出了一种由非挥发性相变材料GeSbSeTe(GSST)组成的单层超表面,其在亚波长尺度上具有可调的自旋轨道相互作用。根据自旋相关的相消或相长干涉,当GSST处于非晶态时,对于圆偏振入射可实现不对称透射(消光比>8:1)。此外,当GSST转变为晶态时,由于固有手性的存在,可观察到相反的手性透射(消光比>12:1)。另外,由于平均交叉偏振透射幅度大于85%,基于潘查拉特纳姆-贝里相位理论,在两种状态下均可同时实现任意波前操纵。作为概念验证,设计并表征了几种功能性超表面器件,以进一步证明我们设计方法的有效性。相信这些具有超高紧凑性的多功能器件在包括手性光学光谱、电磁通信、手性成像和信息加密等各种应用中具有广阔前景。

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