| Literature DB >> 31548414 |
Wei Bao1, Xiaoze Liu1, Fei Xue2,3,4, Fan Zheng5, Renjie Tao1, Siqi Wang1, Yang Xia1, Mervin Zhao1, Jeongmin Kim1, Sui Yang1, Quanwei Li1, Ying Wang1, Yuan Wang1, Lin-Wang Wang5, Allan H MacDonald6, Xiang Zhang7,8.
Abstract
The condensation of half-light half-matter exciton polaritons in semiconductor optical cavities is a striking example of macroscopic quantum coherence in a solid-state platform. Quantum coherence is possible only when there are strong interactions between the exciton polaritons provided by their excitonic constituents. Rydberg excitons with high principal value exhibit strong dipole-dipole interactions in cold atoms. However, polaritons with the excitonic constituent that is an excited state, namely Rydberg exciton polaritons (REPs), have not yet been experimentally observed. Here, we observe the formation of REPs in a single crystal CsPbBr3 perovskite cavity without any external fields. These polaritons exhibit strong nonlinear behavior that leads to a coherent polariton condensate with a prominent blue shift. Furthermore, the REPs in CsPbBr3 are highly anisotropic and have a large extinction ratio, arising from the perovskite's orthorhombic crystal structure. Our observation not only sheds light on the importance of many-body physics in coherent polariton systems involving higher-order excited states, but also paves the way for exploring these coherent interactions for solid-state quantum optical information processing.Entities:
Keywords: Rydberg exciton; cavity; condensate; perovskite; polariton
Year: 2019 PMID: 31548414 PMCID: PMC6789798 DOI: 10.1073/pnas.1909948116
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205