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All-silicon reconfigurable metasurfaces for multifunction and tunable performance at optical frequencies based on glide symmetry

机译:基于滑移对称性的全硅可重构超颖表面在光频率下具有多功能和可调性能

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摘要

Dielectric metasurfaces have opened promising possibilities to enable a versatile platform in the miniaturization of optical elements at visible and infrared frequencies. Due to high efficiency and compatibility with CMOS fabrication technology, silicon-based metasurfaces have a remarkable potential for a wide variety of optical devices. Adding tunability mechanisms to metasurfaces could be beneficial for their application in areas such as communications, imaging and sensing. In this paper, we propose an all-silicon reconfigurable metasurface based on the concept of glide symmetry. The reconfigurability is achieved by a phase modulation of the transmitted wave activated by a lateral displacement of the layers. The misalignment between the layers creates a new inner periodicity which leads to the formation of a metamolecule with a new sort of near-field interaction. The proposed approach is highly versatile for developing multifunctional and tunable metadevices at optical frequencies. As a proof of concept, in this paper, we design a bifunctional metadevice, as well as a tunable lens and a controllable beam deflector operating at 1.55 μm.
机译:介电超表面已经为在可见光和红外频率的光学元件小型化中实现多功能平台提供了广阔的前景。由于具有高效率和与CMOS制造技术的兼容性,基于硅的超颖表面对于各种光学器件具有巨大的潜力。向超表面添加可调性机制可能对其在通信,成像和传感等领域的应用有益。在本文中,我们基于滑行对称性的概念提出了一种全硅可重构超颖表面。可重构性是通过对发射波的相位调制而实现的,该发射波由各层的横向位移激活。层之间的未对准产生新的内部周期性,这导致具有新近场相互作用的大分子的形成。所提出的方法在光频率下用于开发多功能和可调元设备的通用性很高。作为概念的证明,在本文中,我们设计了一种双功能元设备,以及一个工作在1.55μm的可调透镜和可控光束偏转器。

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