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Mechanically tunable dielectric resonator metasurfaces at visible frequencies

机译:可见频率的机械可调介质谐振器表面

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摘要

Devices that manipulate light represent the future of information processing. Flat optics and structures with subwavelength periodic features (metasurfaces) provide compact and efficient solutions. The key bottleneck is efficiency, and replacing metallic resonators with dielectric resonators has been shown to significantly enhance performance. To extend the functionalities of dielectric metasurfaces to real-world optical applications, the ability to tune their properties becomes important. In this article, we present a mechanically tunable all-dielectric metasurface. This is composed of an array of dielectric resonators embedded in an elastomeric matrix. The optical response of the structure under a uniaxial strain is analyzed by mechanical-electromagnetic co-simulations. It is experimentally demonstrated that the metasurface exhibits remarkable resonance shifts. Analysis using a Lagrangian model reveals that strain modulates the near-field mutual interaction between resonant dielectric elements. The ability to control and alter inter-resonator coupling will position dielectric metasurfaces as functional elements of reconfigurable optical devices.
机译:操纵光的设备代表了信息处理的未来。具有亚波长周期性特征(平面)的平面光学器件和结构提供了紧凑而有效的解决方案。关键瓶颈是效率,并且已经证明用介电谐振器代替金属谐振器可以显着提高性能。为了将介电超表面的功能扩展到实际的光学应用中,调整其性能的能力变得很重要。在本文中,我们提出了一种机械可调的全介电超表面。它由嵌入弹性体矩阵中的电介质谐振器阵列组成。通过机械电磁共仿真分析结构在单轴应变下的光学响应。实验证明,超颖表面表现出显着的共振位移。使用拉格朗日模型进行的分析表明,应变可调节谐振介电元件之间的近场相互作用。控制和改变谐振器间耦合的能力会将介电超表面定位为可重构光学设备的功能元件。

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