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一种热调谐元双工透镜(MDL):设计与特性分析。

A Thermal Tuning Meta-Duplex-Lens (MDL): Design and Characterization.

作者信息

Xu Ning, Liang Yaoyao, Hao Yuan, Mao Min, Guo Jianping, Liu Hongzhan, Meng Hongyun, Wang Faqiang, Wei Zhongchao

机构信息

Guangdong Provincial Key Laboratory of Nanophotonic Functional Materials and Devices, School of Information and Optoelectronic Science and Engineering, South China Normal University, Guangzhou 510006, China.

Centre de Nanosciences et de Nanotechnologies, CNRS, Université Paris-Sud-Université Paris-Saclay 10 Boulevard Thomas Gobert, 91120 Palaiseau, France.

出版信息

Nanomaterials (Basel). 2020 Jun 8;10(6):1135. doi: 10.3390/nano10061135.

Abstract

Multifunctional metasurfaces play an important role in the development of integrated optical paths. However, some of the realizations of current multifunctional metasurface devices depend on polarization selectivity, and others change the polarization state of the outgoing light. Here, based on vanadium dioxide (VO) phase change material, a strategy to design a meta-duplex-lens (MDL) is proposed and numerical simulation calculations demonstrate that at low temperature (about 300 K), VO behaves as a dielectric so that the MDL can act as a transmission lens (transmission efficiency of 87.6%). Conversely, when VO enters the metallic state (about 355 K), the MDL has the ability to reflect and polymerize electromagnetic waves and works as a reflection lens (reflection efficiency of 85.1%). The dielectric waveguide and gap-surface plasmon (GSP) theories are used in transmission and reflection directions, respectively. In order to satisfy the coverage of the phase gradient in the range of 2π in both cases, we set the antenna as a nanopillar with a high aspect ratio. It is notable that, via symmetrical antennas acting in concert with VO phase change material, the polarization states of both the incident light and the outgoing light are not changed. This reversible tuning will play a significant role in the fields of imaging, optical storage devices, communication, sensors, etc.

摘要

多功能超表面在集成光路的发展中起着重要作用。然而,当前一些多功能超表面器件的实现依赖于偏振选择性,还有一些会改变出射光的偏振态。在此,基于二氧化钒(VO)相变材料,提出了一种设计元双工透镜(MDL)的策略,数值模拟计算表明,在低温(约300K)下,VO表现为电介质,使得MDL可作为透射透镜(透射效率为87.6%)。相反,当VO进入金属态(约355K)时,MDL具有反射和聚合电磁波的能力,并作为反射透镜工作(反射效率为85.1%)。分别在透射和反射方向上使用了介质波导和间隙表面等离子体(GSP)理论。为了在两种情况下都满足相位梯度在2π范围内的覆盖,我们将天线设置为具有高纵横比的纳米柱。值得注意的是,通过对称天线与VO相变材料协同作用,入射光和出射光的偏振态均未改变。这种可逆调谐将在成像、光存储器件、通信、传感器等领域发挥重要作用。

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