等离子体子
超材料
红外线的
半导体
各向异性
材料科学
光学
电介质
光电子学
物理
作者
Yinming Shao,Aaron Sternbach,Brian S. Y. Kim,A. Rikhter,Xinyi Xu,Umberto De Giovannini,Ran Jing,Sang Hoon Chae,Zhiyuan Sun,Seng Huat Lee,Yanglin Zhu,Zhiqiang Mao,James Hone,Raquel Queiroz,Andrew J. Millis,P. James Schuck,Ángel Rubio,M. M. Fogler,D. N. Basov
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2022-10-28
卷期号:8 (43)
被引量:10
标识
DOI:10.1126/sciadv.add6169
摘要
Metals are canonical plasmonic media at infrared and optical wavelengths, allowing one to guide and manipulate light at the nanoscale. A special form of optical waveguiding is afforded by highly anisotropic crystals revealing the opposite signs of the dielectric functions along orthogonal directions. These media are classified as hyperbolic and include crystalline insulators, semiconductors, and artificial metamaterials. Layered anisotropic metals are also anticipated to support hyperbolic waveguiding. However, this behavior remains elusive, primarily because interband losses arrest the propagation of infrared modes. Here, we report on the observation of propagating hyperbolic waves in a prototypical layered nodal-line semimetal ZrSiSe. The observed waveguiding originates from polaritonic hybridization between near-infrared light and nodal-line plasmons. Unique nodal electronic structures simultaneously suppress interband loss and boost the plasmonic response, ultimately enabling the propagation of infrared modes through the bulk of the crystal.
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