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An Information Theory-Inspired Strategy for Design of Re-programmable Encrypted Graphene-based Coding Metasurfaces at Terahertz Frequencies

机译:信息论启发的太赫兹频率可重新设计的基于加密石墨烯的编码超表面设计策略

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摘要

Inspired by the information theory, a new concept of re-programmable encrypted graphene-based coding metasurfaces was investigated at terahertz frequencies. A channel-coding function was proposed to convolutionally record an arbitrary information message onto unrecognizable but recoverable parity beams generated by a phase-encrypted coding metasurface. A single graphene-based reflective cell with dual-mode biasing voltages was designed to act as “0” and “1” meta-atoms, providing broadband opposite reflection phases. By exploiting graphene tunability, the proposed scheme enabled an unprecedented degree of freedom in the real-time mapping of information messages onto multiple parity beams which could not be damaged, altered, and reverse-engineered. Various encryption types such as mirroring, anomalous reflection, multi-beam generation, and scattering diffusion can be dynamically attained via our multifunctional metasurface. Besides, contrary to conventional time-consuming and optimization-based methods, this paper convincingly offers a fast, straightforward, and efficient design of diffusion metasurfaces of arbitrarily large size. Rigorous full-wave simulations corroborated the results where the phase-encrypted metasurfaces exhibited a polarization-insensitive reflectivity less than −10 dB over a broadband frequency range from 1 THz to 1.7 THz. This work reveals new opportunities for the extension of re-programmable THz-coding metasurfaces and may be of interest for reflection-type security systems, computational imaging, and camouflage technology.
机译:受信息理论的启发,研究了在太赫兹频率下可重新编程的基于加密石墨烯的编码超表面的新概念。提出了一种信道编码功能,用于将任意信息消息卷积记录到由相位加密的编码超表面生成的不可识别但可恢复的奇偶光束上。具有双模偏置电压的基于石墨烯的单个反射单元被设计为充当“ 0”和“ 1”形原子,从而提供了与宽带相反的反射相位。通过利用石墨烯的可调谐性,所提出的方案在信息消息到多个奇偶校验光束的实时映射中实现了前所未有的自由度,这些奇偶校验光束无法被损坏,更改和反向工程。通过我们的多功能超颖表面可以动态地获得各种加密类型,例如镜像,异常反射,多光束生成和散射扩散。此外,与传统的耗时和基于优化的方法相反,本文令人信服地提供了任意大尺寸扩散超表面的快速,直接和有效的设计。严格的全波仿真证实了以下结果:相位加密的超颖表面在1 THz至1.7 THz的宽带频率范围内显示出对偏振不敏感的反射率小于-10 dB。这项工作揭示了扩展可重新编程的THz编码超颖表面的新机会,并且可能对于反射型安全系统,计算成像和迷彩技术很感兴趣。

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