多极展开
纳米光子学
物理
范德瓦尔斯力
谐振器
电介质
联轴节(管道)
超材料
领域(数学)
激子
各向异性
光学
折射率
光电子学
窄带
自由度(物理和化学)
材料科学
凝聚态物理
量子力学
数学
分子
冶金
纯数学
作者
A. V. Prokhorov,Sergey M. Novikov,M. Yu. Gubin,Roman V. Kirtaev,А. В. Шестериков,Dmitriy Grudinin,Mikhail K. Tatmyshevskiy,Dmitry I. Yakubovsky,E. S. Zhukova,Aleksey V. Arsenin,Valentyn S. Volkov
标识
DOI:10.1002/lpor.202401666
摘要
Abstract The advent of a new era of flat optics is due to the optical metasurfaces, whose large number of degrees of freedom allowed one to fabricate various optical elements on a single technological platform. The use of van der Waals (vdW) layered materials, which have a remarkable combination of a high refractive index, record optical anisotropy and bright exciton resonances, can lead to operating regimes of metasurfaces that are unattainable for their dielectric counterparts. In this work, the degree of freedom related to the optical anisotropy is used for control of the balance and competition of modes of vdW resonators, leading to the observation of both the well‐known hybrid anapole effect and recently predicted octupole quasi‐trapped mode (OQTM) regime in the same metasurface. Using far‐field and near‐field analysis of the metasurface composed of disks, both the common and significantly different features of these two effects are demonstrated and it is found that the remarkable combination of narrow spectral features and strong energy localization makes OQTM‐supported vdW metasurfaces a much more attractive alternative for creating flat nanophotonic devices, including narrowband converters, light concentrators, as well as surface‐emitting lasers and nonlinear light converters.
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