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基于全介质电光III-V族多量子阱超表面的动态光束转向

Dynamic beam steering with all-dielectric electro-optic III-V multiple-quantum-well metasurfaces.

作者信息

Wu Pin Chieh, Pala Ragip A, Kafaie Shirmanesh Ghazaleh, Cheng Wen-Hui, Sokhoyan Ruzan, Grajower Meir, Alam Muhammad Z, Lee Duhyun, Atwater Harry A

机构信息

Thomas J. Watson Laboratory of Applied Physics, California Institute of Technology, Pasadena, CA, 91125, USA.

Department of Photonics, National Cheng Kung University, Tainan, 70101, Taiwan.

出版信息

Nat Commun. 2019 Aug 13;10(1):3654. doi: 10.1038/s41467-019-11598-8.

Abstract

Tunable metasurfaces enable dynamical control of the key constitutive properties of light at a subwavelength scale. To date, electrically tunable metasurfaces at near-infrared wavelengths have been realized using free carrier modulation, and switching of thermo-optical, liquid crystal and phase change media. However, the highest performance and lowest loss discrete optoelectronic modulators exploit the electro-optic effect in multiple-quantum-well heterostructures. Here, we report an all-dielectric active metasurface based on electro-optically tunable III-V multiple-quantum-wells patterned into subwavelength elements that each supports a hybrid Mie-guided mode resonance. The quantum-confined Stark effect actively modulates this volumetric hybrid resonance, and we observe a relative reflectance modulation of 270% and a phase shift from 0° to ~70°. Additionally, we demonstrate beam steering by applying an electrical bias to each element to actively change the metasurface period, an approach that can also realize tunable metalenses, active polarizers, and flat spatial light modulators.

摘要

可调谐超表面能够在亚波长尺度上对光的关键本构特性进行动态控制。迄今为止,近红外波长的电可调谐超表面已通过自由载流子调制以及热光、液晶和相变介质的切换得以实现。然而,性能最高且损耗最低的离散光电调制器利用的是多量子阱异质结构中的电光效应。在此,我们报道一种全介质有源超表面,它基于电光可调谐的III-V族多量子阱,这些量子阱被图案化为亚波长元件,每个元件都支持一种混合米氏导模共振。量子限制斯塔克效应可主动调制这种体混合共振,我们观察到相对反射率调制达270%,相移从0°到约70°。此外,我们通过对每个元件施加电偏压以主动改变超表面周期来演示光束转向,这种方法还可实现可调谐金属透镜、有源偏振器和平坦空间光调制器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a90/6692380/fd8ba4bc127a/41467_2019_11598_Fig1_HTML.jpg

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