纳米光子学
等离子体子
激子
材料科学
激子极化
电介质
单层
极化子
折射率
光电子学
纳米技术
可见光谱
米氏散射
红外线的
超材料
各向异性
物理
凝聚态物理
光学
光散射
散射
作者
Ruggero Verre,Denis G. Baranov,Battulga Munkhbat,Jorge Cuadra,Mikael Käll,Timur Shegai
标识
DOI:10.1038/s41565-019-0442-x
摘要
Monolayer transition metal dichalcogenides (TMDCs) have recently been proposed as an excitonic platform for advanced optical and electronic functionalities1-3. However, in spite of intense research efforts, it has not been widely appreciated that TMDCs also possess a high refractive index4,5. This characteristic opens up the possibility to utilize them to construct resonant nanoantennas based on subwavelength geometrical modes6,7. Here, we show that nanodisks, fabricated from exfoliated multilayer WS2, support distinct Mie resonances and anapole states8 that can be tuned in wavelength over the visible and near-infrared range by varying the nanodisk size and aspect ratio. As a proof of concept, we demonstrate a novel regime of light-matter interaction-anapole-exciton polaritons-which we realize within a single WS2 nanodisk. We argue that the TMDC material anisotropy and the presence of excitons enrich traditional nanophotonics approaches based on conventional high-index materials and/or plasmonics.
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