Ultrastrong light–matter coupling in two-dimensional metal–organic chalcogenolates

IF 32.3 1区 物理与天体物理 Q1 OPTICS Nature Photonics Pub Date : 2025-01-10 DOI:10.1038/s41566-024-01590-0
Surendra B. Anantharaman, Jason Lynch, Mariya Aleksich, Christopher E. Stevens, Christopher Munley, Bongjun Choi, Sridhar Shenoy, Thomas Darlington, Arka Majumdar, P. James Schuck, Joshua R. Hendrickson, J. Nathan Hohman, Deep Jariwala
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Abstract

Hybridization of excitons with photons to form hybrid quasiparticles—exciton–polaritons (EPs)—has been widely investigated in a range of semiconductor material systems coupled to photonic cavities. Self-hybridization occurs when the semiconductor itself can serve as the photonic cavity medium, resulting in strongly coupled EPs with Rabi splitting energies (ħΩ) of >200 meV at room temperature, which were recently observed in layered two-dimensional excitonic materials. Here we report an extreme version of this phenomenon—an ultrastrong EP coupling—in a nascent, two-dimensional excitonic system, namely, the metal–organic chalcogenolate compound called mithrene. The resulting self-hybridized EPs in mithrene crystals placed on Au substrates show Rabi splitting in the ultrastrong-coupling range (ħΩ > 600 meV) due to the strong oscillator strength of the excitons concurrent with the large refractive indices of mithrene. We further show that bright EP emission occurs at room temperature as well as EP dispersions at low temperatures. Importantly, we find lower EP emission linewidth narrowing to ~1 nm when mithrene crystals are placed in closed Fabry–Pérot cavities. Our results suggest that metal–organic chalcogenolate materials are ideal for polaritonics in the deep green-blue part of the spectrum in which strong excitonic materials with large optical constants are particularly scarce.

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二维金属-有机硫代酸盐的超强光-物质耦合
激子与光子的杂化形成杂化准粒子-激子-极化子(EPs)在一系列耦合光子腔的半导体材料系统中得到了广泛的研究。当半导体本身可以作为光子腔介质时,会发生自杂化,导致室温下具有200 meV拉比分裂能(ħΩ)的强耦合EPs,这是最近在层状二维激子材料中观察到的。在这里,我们报告了这种现象的一个极端版本——在一个新生的二维激子系统中,即金属-有机硫代酚酸酯化合物,称为米特伦。在Au衬底上放置的米二烯晶体中产生的自杂化EPs在超强耦合范围内(ħΩ > 600 meV)表现出Rabi分裂,这是由于激子的强振荡强度与米二烯的大折射率同时存在。我们进一步表明,明亮的EP发射发生在室温下,以及EP在低温下的分散。重要的是,我们发现当将甲基甲烷晶体放置在闭合的fabry - psamrot腔中时,较低的EP发射线宽缩小到~1 nm。我们的研究结果表明,金属-有机硫代酚酸酯材料在光谱的深绿色-蓝色部分是理想的极化电子学,其中具有大光学常数的强激子材料特别缺乏。
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来源期刊
Nature Photonics
Nature Photonics 物理-光学
CiteScore
54.20
自引率
1.70%
发文量
158
审稿时长
12 months
期刊介绍: Nature Photonics is a monthly journal dedicated to the scientific study and application of light, known as Photonics. It publishes top-quality, peer-reviewed research across all areas of light generation, manipulation, and detection. The journal encompasses research into the fundamental properties of light and its interactions with matter, as well as the latest developments in optoelectronic devices and emerging photonics applications. Topics covered include lasers, LEDs, imaging, detectors, optoelectronic devices, quantum optics, biophotonics, optical data storage, spectroscopy, fiber optics, solar energy, displays, terahertz technology, nonlinear optics, plasmonics, nanophotonics, and X-rays. In addition to research papers and review articles summarizing scientific findings in optoelectronics, Nature Photonics also features News and Views pieces and research highlights. It uniquely includes articles on the business aspects of the industry, such as technology commercialization and market analysis, offering a comprehensive perspective on the field.
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