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采用混合相变等离子体结构的可重构多功能超表面

Reconfigurable multifunctional metasurfaces employing hybrid phase-change plasmonic architecture.

作者信息

Abdollahramezani Sajjad, Taghinejad Hossein, Fan Tianren, Marzban Mahmood Reza, Eftekhar Ali A, Adibi Ali

机构信息

School of Electrical and Computer Engineering, Georgia Institute of Technology, 778 Atlantic Drive NW, Atlanta, GA 30332-0250, USA.

出版信息

Nanophotonics. 2022 Aug 15;11(17):3883-3893. doi: 10.1515/nanoph-2022-0271. eCollection 2022 Sep.

Abstract

We present a hybrid device platform for creating an electrically reconfigurable metasurface formed by the integration of plasmonic nanostructures with phase-change material germanium antimony telluride (GST). By changing the phase of GST from amorphous to crystalline through Joule heating, a large range of responses from the metasurface can be achieved. Furthermore, by using the intermediate phases of GST, the metasurface can interact with the incident light in both over-coupling and under-coupling regimes, leading to an inherently broadband response. Through a detailed investigation of the nature of the fundamental modes, we demonstrate that changing the crystalline phase of the GST at the pixel-level enables an effective control over the key properties (i.e., amplitude, phase, and polarization) of incident light. This leads to the realization of a broadband electrically tunable multifunctional metadevice enabling beam switching, focusing, steering, and polarization conversion. Such a hybrid structure offers a high-speed, broadband, and nonvolatile reconfigurable paradigm for electrically programmable optical devices such as switches, holograms, and polarimeters.

摘要

我们展示了一种混合器件平台,用于创建一种电可重构超表面,该超表面通过将等离子体纳米结构与相变材料锗锑碲(GST)集成而成。通过焦耳加热将GST的相从非晶态转变为晶态,可以实现超表面的大范围响应。此外,通过利用GST的中间相,超表面可以在过耦合和欠耦合两种状态下与入射光相互作用,从而产生固有的宽带响应。通过对基本模式性质的详细研究,我们证明在像素级别改变GST的晶相能够有效控制入射光的关键特性(即幅度、相位和偏振)。这导致实现了一种宽带电可调多功能超器件,能够实现光束切换、聚焦、转向和偏振转换。这种混合结构为诸如开关、全息图和偏振计等电可编程光学器件提供了一种高速、宽带且非易失性的可重构范例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f107/11501198/a160a9a021ef/j_nanoph-2022-0271_fig_001.jpg

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