直接观测单根 MoS2 纳米管中的分裂模式激子-极化子

IF 8 2区 材料科学 Q1 CHEMISTRY, PHYSICAL
A. I. Galimov, D. R. Kazanov, A. V. Poshakinskiy, M. V. Rakhlin, I. A. Eliseyev, A. A. Toropov, M. Remškar and T. V. Shubina
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引用次数: 0

摘要

由过渡金属二掺杂化合物(TMDC)合成的单根纳米管表现出强烈的激子共振,此外还能支持光学耳语廊模式。这种组合有望在没有外部空腔的情况下观测激子-极化子。然而,传统的能量-动量分辨探测方法并不适合这种微小物体。相反,我们建议在具有扁平截面的扭曲纳米管中使用分裂光学模式,在这种情况下,相对管壁之间逐渐减小的间隙会导致模式能量的变化,这类似于双阱势中的势垒宽度对特征能的影响。利用微反射光谱,我们研究了具有可变间隙和恒定间隙的单个 MoS2 管中丰富的极化子分支模式。在 40-60 meV 范围内观察到的拉比分裂与微腔中 MoS2 单层的拉比分裂相当。我们基于极化子色散测量和极化子动力学分析得出的结果表明,单根 TMDC 纳米管是纳米光子学的完美极化子结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Direct observation of split-mode exciton-polaritons in a single MoS2 nanotube†

Direct observation of split-mode exciton-polaritons in a single MoS2 nanotube†

Direct observation of split-mode exciton-polaritons in a single MoS2 nanotube†

A single nanotube synthesized from a transition metal dichalcogenide (TMDC) exhibits strong exciton resonances and, in addition, can support optical whispering gallery modes. This combination is promising for observing exciton-polaritons without an external cavity. However, traditional energy-momentum-resolved detection methods are unsuitable for this tiny object. Instead, we propose to use split optical modes in a twisted nanotube with the flattened cross-section, where a gradually decreasing gap between the opposite walls leads to a change in mode energy, similar to the effect of the barrier width on the eigenenergies in the double-well potential. Using micro-reflectance spectroscopy, we investigated the rich pattern of polariton branches in single MoS2 tubes with both variable and constant gaps. Observed Rabi splitting in the 40–60 meV range is comparable to that for a MoS2 monolayer in a microcavity. Our results, based on the polariton dispersion measurements and polariton dynamics analysis, present a single TMDC nanotube as a perfect polaritonic structure for nanophotonics.

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来源期刊
Nanoscale Horizons
Nanoscale Horizons Materials Science-General Materials Science
CiteScore
16.30
自引率
1.00%
发文量
141
期刊介绍: Nanoscale Horizons stands out as a premier journal for publishing exceptionally high-quality and innovative nanoscience and nanotechnology. The emphasis lies on original research that introduces a new concept or a novel perspective (a conceptual advance), prioritizing this over reporting technological improvements. Nevertheless, outstanding articles showcasing truly groundbreaking developments, including record-breaking performance, may also find a place in the journal. Published work must be of substantial general interest to our broad and diverse readership across the nanoscience and nanotechnology community.
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