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Nonlinear optics at excited states of exciton polaritons in two-dimensional atomic crystals

DOI:10.1021/acs.nanolett.9b04811 期刊:Nano Letters 出版年份:2020 更新时间:2025-09-16 10:30:52
摘要: Exciton polaritons (EP) are partial-light partial-matter quasiparticles in semiconductors demonstrating striking quantum phenomena such as Bose-Einstein condensation and single-photon nonlinearity. In these phenomena, the governing process is the EP relaxation into the ground states upon excitation, where various mechanisms are extensively investigated with thermodynamic limits. However, the relaxation process becomes drastically different and could significantly advance the understanding of EP dynamics for these quantum phenomena, when excited states of EP are involved. Here, for the first time, we observe nonlinear optical responses at the EP excited states in a monolayer tungsten disulphide (WS2) microcavity, including dark excited states and dynamically metastable upper polariton band. The nonlinear optics leads to unique emissions of ground states with prominent valley degree of freedom (DOF) via anomalous relaxation process, which is applicable to a wide range of semiconductors from monolayer transition metal dichalcogenides (TMDs) to emerging halide perovskites. This work promises possible approaches to challenging experiments such as valley polariton condensation. Moreover, it also constructs a valley-dependent solid state three-level system for terahertz photonics and stimulated Raman adiabatic passage.
作者: Xiaoze Liu,Jun Yi,Quanwei Li,Sui Yang,Wei Bao,Chad Ropp,Shoufeng Lan,Yuan Wang,Xiang Zhang
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Investigating the nonlinear optical responses at the excited states of exciton polaritons in a monolayer tungsten disulphide (WS2) microcavity, including dark excited states and dynamically metastable upper polariton band, and their implications for quantum phenomena and applications in terahertz photonics and stimulated Raman adiabatic passage.

The study successfully observes nonlinear optical responses from excited states of EP in a monolayer TMD via TPE and SHG spectroscopy, revealing unconventional relaxation processes and valley dynamics. This work advances the understanding of EP excited states and their quantum electrodynamics, with potential applications in valley BEC, chiral superfluidity, and terahertz photonics.

The study is limited by the technical constraints of the experimental setup and the potential for optimization in the sample preparation and optical characterization techniques. The intervalley scattering and thermodynamic relaxation processes may also impose limitations on the observed phenomena.

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