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基于相变材料实现多功能集成的动态非局域超表面

Dynamic nonlocal metasurface for multifunctional integration via phase-change materials.

作者信息

Yu Shilin, Xu Mingfeng, Pu Mingbo, Tang Xi, Zheng Yuhan, Guo Yinghui, Zhang Fei, Li Xiong, Ma Xiaoliang, Luo Xiangang

机构信息

National Key Laboratory of Optical Field Manipulation Science and Technology, Chinese Academy of Sciences, Chengdu 610209, China.

State Key Laboratory of Optical Technologies on Nano-Fabrication and Micro-Engineering, Institute of Optics and Electronics, Chinese Academy of Sciences, Chengdu 610209, China.

出版信息

Nanophotonics. 2024 Oct 10;13(23):4317-4325. doi: 10.1515/nanoph-2024-0357. eCollection 2024 Nov.

Abstract

Non-local metasurface supporting geometric phases at bound states in the continuum (BIC) simultaneously enables sharp spectral resonances and spatial wavefront shaping, thus providing a diversified optical platform for multifunctional devices. However, a static nonlocal metasurface cannot manipulate multiple degrees of freedom (DOFs), making it difficult to achieve multifunctional integration and be applied in different scenarios. Here, we presented and demonstrated phase-change non-local metasurfaces that can realize dynamic manipulation of multiple DOFs including resonant frequency, values, band, and spatial wavefront. Accordingly, a metasurface integrating multiple distinct functions is designed, as a proof-of-concept demonstration. Utilizing the geometry phase of quasi-BIC and the tunability of vanadium dioxide (VO), a dynamic meta-lens is achieved by tailoring spatial light response at quasi-BIC in the temperature range from room temperature to 53 °C. Simultaneously, the sharp Fano resonance of quasi-BIC enables the metasurface to serve as an optical sensor in the mid-infrared band, yielding a sensitivity of 7.96 THz/RIU at room temperature. Furthermore, at the metallic state of VO (80 °C), the designed metasurface converts into a mid-infrared broadband absorber, achieving higher than 80 % absorptivity and an average absorption of 90 % from 28.62 THz to 37.56 THz. The proposed metasurface enabling multifunctional performances in different temperatures can effectively improve the availability of devices and find more new and complex scenarios in sensing, imaging, and communications.

摘要

在连续统束缚态(BIC)下支持几何相位的非局域超表面同时实现了尖锐的光谱共振和空间波前整形,从而为多功能器件提供了一个多样化的光学平台。然而,静态非局域超表面无法操纵多个自由度(DOF),这使得实现多功能集成并应用于不同场景变得困难。在此,我们提出并展示了相变非局域超表面,其能够实现对包括共振频率、值、能带和空间波前在内的多个自由度的动态操纵。相应地,设计了一种集成多种不同功能的超表面作为概念验证演示。利用准BIC的几何相位和二氧化钒(VO)的可调性,通过在室温至53°C的温度范围内调整准BIC处的空间光响应,实现了一个动态超透镜。同时,准BIC的尖锐法诺共振使超表面能够作为中红外波段的光学传感器,在室温下产生7.96 THz/RIU的灵敏度。此外,在VO的金属态(80°C)下,所设计的超表面转变为中红外宽带吸收器,在28.62 THz至37.56 THz范围内实现了高于80%的吸收率和90%的平均吸收率。所提出的在不同温度下实现多功能性能的超表面能够有效提高器件的可用性,并在传感、成像和通信中找到更多新的复杂场景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67e2/11636466/8d3865004db7/j_nanoph-2024-0357_fig_001.jpg

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