论文标题
通过强耦合来调整丛晶体的带状结构
Tailoring the band structure of plexcitonic crystals by strong coupling
论文作者
论文摘要
及其激子主导的光学行为是在可见光范围内和环境条件下实现较强的光 - 物质相互作用的有前途的材料。当这些材料与金属结合时,由于在界面上混合金属-TMDC结构中形成了沉积物,因此,在衍射极限低于衍射极限的金属中等离子体极化的能力限制能力。本文中,我们证明了等离子体晶体中的准散发等离子体与WSE2中的激子之间的耦合提供了一个多振荡器游乐场,用于调整等离激晶晶体结构的频带结构,并导致新兴的平坦带。阴极发光光谱和角度分辨测量结合结合了数值计算的光子带结构证实了强烈的激子 - 平面耦合,从而导致混合晶格的带图以及通过强耦合来量身定制带图的频带图。这里研究的杂化丛晶体结构维持具有较低组速度的光波。这些结果可用于基于强耦合效果设计可调慢的慢光结构,并铺平了通向丛集的拓扑光子结构的道路。
Transition-metal dichalcogenides with their exciton-dominated optical behavior emerge as promising materials for realizing strong light-matter interactions in the visible range and at ambient conditions. When these materials are combined with metals, the energy confining ability of plasmon polaritons in metals below the diffraction limit, allows for further enhancing and tailoring the light-matter interaction, due to the formation of plexcitons in hybrid metal-TMDC structures at the interface. Herein, we demonstrate that the coupling between quasi-propagating plasmons in plasmonic crystals and excitons in WSe2, provides a multi-oscillator playground for tailoring the band structure of plasmonic crystal structures and results in emerging flat bands. The cathodoluminescence spectroscopy and angle-resolved measurements combined with the numerically calculated photonic band structure confirm a strong exciton-plasmon coupling, leading to significant changes in the band diagram of the hybrid lattice and the ability to tailor the band diagram via strong coupling. The hybrid plexcitonic crystal structures investigated here sustain optical waves with remarkably low group velocities. These results could be used for designing tunable slow-light structures based on the strong-coupling effect and pave the way toward plexcitonic topological photonic structures.