Collective Strong Light-Matter Coupling in Hierarchical Microcavity-Plasmon-Exciton Systems

激子 准粒子 极化子 联轴节(管道) 等离子体子 光致发光 光电子学 实现(概率) 物理 材料科学 凝聚态物理 超导电性 冶金 统计 数学
作者
Ankit Bisht,Jorge Cuadra,Martin Wersäll,Adriana Canales,Tomasz J. Antosiewicz,Timur Shegai
出处
期刊:Nano Letters [American Chemical Society]
卷期号:19 (1): 189-196 被引量:106
标识
DOI:10.1021/acs.nanolett.8b03639
摘要

Polaritons are compositional light-matter quasiparticles that arise as a result of strong coupling between a vacuum field of a resonant optical cavity and electronic excitations in quantum emitters. Reaching such a regime is often hard, as it requires materials possessing high oscillator strengths to interact with the relevant optical mode. Two dimensional transition metal dichalcogenides (TMDs) have recently emerged as promising candidates for realization of the strong coupling regime at room temperature. However, these materials typically provide coupling strengths in the range of 10-40 meV, which may be insufficient for reaching strong coupling with low quality factor resonators. Here, we demonstrate a universal scheme that allows a straightforward realization of strong and ultra-strong coupling regime with 2D materials and beyond. By intermixing plasmonic excitations in nanoparticle arrays with excitons in a WS2 monolayer inside a resonant metallic microcavity, we fabricate a hierarchical system with the combined Rabi splitting exceeding 500 meV at room temperature. Photoluminescence measurements of the coupled systems show dominant emission from the lower polariton branch, indicating the participation of excitons in the coupling process. Strong coupling has been recently suggested to affect numerous optical- and material-related properties including chemical reactivity, exciton transport and optical nonlinearities. With the universal scheme presented here, strong coupling across a wide spectral range is within easy reach and therefore exploring these exciting phenomena can be further pursued in a much broader class of materials.
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