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基于狄拉克半金属的双曲超材料中光子拓扑转变诱导的可调角度选择性光学透明性。

Tunable angle-selective optical transparency induced by photonic topological transition in Dirac semimetals-based hyperbolic metamaterials.

作者信息

Wang Qin, Zhang Liwei, Cai Xiaolin, Cencillo-Abad Pablo, Ou Jun-Yu

出版信息

Opt Express. 2022 Jun 20;30(13):23102-23114. doi: 10.1364/OE.458584.

Abstract

The tunable angle-selective transparency of hyperbolic metamaterials consisting of various multilayers of Dirac semimetal and dielectric materials are theoretically and numerically studied in the terahertz range. Three stack configurations are considered: alternating, sandwiched, and disordered. It is found that the proposed structures exhibit strong optical angular selectivity induced by photonic topological transition for transverse magnetic waves. Interestingly, the topological transition frequency can be flexibly modulated by changing the Fermi energy, temperature, and the releasing time of the Dirac semimetal, as well as the thickness ratio of the dielectric and semimetal layers. It is also noticed that the angular optical transparency properties are independent of the order of the proposed structure even in alternating/disordered/random configurations if the total thickness ratio of the semimetal to dielectric are the same, which makes the properties particularly easy to realize experimentally. The proposed hyperbolic metamaterial structures present a promising opportunity for wavefront engineering, offering crucial properties for applications in private screens, optical detectors, and light manipulation.

摘要

在太赫兹波段,对由各种狄拉克半金属和介电材料多层组成的双曲线型超材料的可调谐角度选择性透明度进行了理论和数值研究。考虑了三种堆叠结构:交替堆叠、夹层堆叠和无序堆叠。研究发现,所提出的结构对横向磁波表现出由光子拓扑转变引起的强光学角度选择性。有趣的是,拓扑转变频率可以通过改变费米能、温度、狄拉克半金属的弛豫时间以及介电层和半金属层的厚度比来灵活调制。还注意到,如果半金属与介电材料的总厚度比相同,即使在交替/无序/随机配置中,角度光学透明度特性也与所提出结构的顺序无关,这使得这些特性在实验上特别容易实现。所提出的双曲线型超材料结构为波前工程提供了一个有前景的机会,为私密屏幕、光学探测器和光操纵等应用提供了关键特性。

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