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拓扑节环半金属中的双曲极化激元

Hyperbolic Polaritons in Topological Nodal Ring Semimetals.

作者信息

Singh Ashutosh, Sebastian Maria, Chen Yuanping, Chang Po-Yao, Belyanin Alexey

机构信息

Department of Physics and Astronomy, Texas A&M University, College Station, Texas 77843, USA.

Department of Physics, National Tsing Hua University, Hsinchu 300013, Taiwan.

出版信息

Phys Rev Lett. 2023 Sep 1;131(9):096902. doi: 10.1103/PhysRevLett.131.096902.

Abstract

In mirror-symmetric systems, there is a possibility of the realization of extended gapless electronic states characterized as nodal lines or rings. Strain induced modifications to these states lead to the emergence of different classes of nodal rings with qualitatively different physical properties. Here we study optical response and the electromagnetic wave propagation in type I nodal ring semimetals, in which the low-energy quasiparticle dispersion is parabolic in momentum k_{x} and k_{y} and is linear in k_{z}. This leads to a highly anisotropic dielectric permittivity tensor in which the optical response is plasmonic in one spatial direction and dielectric in the other two directions. The resulting normal modes (polaritons) in the bulk material become hyperbolic over a broad frequency range, which is furthermore tunable by the doping level. The propagation, reflection, and polarization properties of the hyperbolic polaritons not only provide valuable information about the electronic structure of these fascinating materials in the most interesting region near the nodal rings but also pave the way to tunable hyperbolic materials with applications ranging from anomalous refraction and waveguiding to perfect absorption in ultrathin subwavelength films.

摘要

在镜面对称系统中,有可能实现以节线或节环为特征的扩展无隙电子态。应变对这些态的诱导修饰导致出现具有定性不同物理性质的不同类别的节环。在此,我们研究I型节环半金属中的光学响应和电磁波传播,其中低能准粒子色散在动量kx和ky上是抛物线型的,在kz上是线性的。这导致了一个高度各向异性的介电常数张量,其中光学响应在一个空间方向上是等离子体的,在另外两个方向上是介电的。体材料中产生的正常模式(极化激元)在很宽的频率范围内变为双曲线型,而且还可通过掺杂水平进行调节。双曲线型极化激元的传播、反射和偏振特性不仅在节环附近最有趣的区域提供了有关这些迷人材料电子结构的有价值信息,而且还为可调谐双曲线型材料铺平了道路,其应用范围从反常折射和波导到超薄亚波长薄膜中的完美吸收。

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