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自旋轨道锁定矢量超表面全息术

Spin-Orbit-Locking Vectorial Metasurface Holography.

作者信息

Yu Zhipeng, Gao Xinyue, Yao Jing, Li Haoran, Shi Yuzhi, Li Bo, Xie Zhenwei, Yuan Xiaocong, Lai Puxiang, Song Qinghua

机构信息

Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, Guangdong, 518055, China.

Department of Biomedical Engineering, Hong Kong Polytechnic University, Hong Kong SAR, 999077, China.

出版信息

Adv Mater. 2025 Mar;37(9):e2415142. doi: 10.1002/adma.202415142. Epub 2024 Dec 16.

Abstract

Vectorial metasurface holography, allowing for independent control over the amplitude, phase, and polarization distribution of holographic images enabled by metasurfaces, plays a crucial role in the realm of optical display, optical, and quantum communications. However, previous research on vectorial metasurface holography has typically been restricted to single degree of freedom input and single channel output, thereby demonstrating a very limited modulation capacity. This work presents a novel method to achieve multi-channel vectorial metasurface holography by harnessing spin-orbit-locking vortex beams. In each channel, the optical vectorial field is encoded with a pair of total angular momentums (TAMs) featuring two orthogonal spin angular momentums (SAMs) independently locked with arbitrary orbital angular momentums (OAMs). The methodology relies on a modified Gerchberg-Saxton algorithm, enabling the encoding of various TAM channels within a single phase profile. Consequently, a pure geometry-phase metasurface with a non-interleaved approach can be used to support such multi-channel vectorial holography, achieving high selectivity of both SAM and OAM, and offering precise routing and manipulation of complex light channels. The work presents a paradigm shift in the field of holography, offering promising avenues for high-density optical information processing and future photonic device design.

摘要

矢量超表面全息术能够独立控制超表面所实现的全息图像的幅度、相位和偏振分布,在光学显示、光学和量子通信领域发挥着关键作用。然而,以往关于矢量超表面全息术的研究通常局限于单自由度输入和单通道输出,因此调制能力非常有限。这项工作提出了一种利用自旋 - 轨道锁定涡旋光束实现多通道矢量超表面全息术的新方法。在每个通道中,光矢量场由一对总角动量(TAM)进行编码,这对总角动量具有两个正交的自旋角动量(SAM),它们分别与任意的轨道角动量(OAM)独立锁定。该方法依赖于一种改进的格尔奇贝格 - 萨克斯顿算法,能够在单个相位分布中对各种TAM通道进行编码。因此,采用非交错方法的纯几何相位超表面可用于支持这种多通道矢量全息术,实现SAM和OAM的高选择性,并对复杂光通道进行精确路由和操纵。这项工作在全息术领域带来了范式转变,为高密度光学信息处理和未来光子器件设计提供了有前景的途径。

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