| Literature DB >> 33649295 |
Jun Wang1, Huawen Xu1, Rui Su2, Yutian Peng3, Jinqi Wu1, Timothy C H Liew4,5, Qihua Xiong6,7.
Abstract
Exciton-polariton condensation is regarded as a spontaneous macroscopic quantum phenomenon with phase ordering and collective coherence. By engineering artificial annular potential landscapes in halide perovskite semiconductor microcavities, we experimentally and theoretically demonstrate the room-temperature spontaneous formation of a coherent superposition of exciton-polariton orbital states with symmetric petal-shaped patterns in real space, resulting from symmetry breaking due to the anisotropic effective potential of the birefringent perovskite crystals. The lobe numbers of such petal-shaped polariton condensates can be precisely controlled by tuning the annular potential geometry. These petal-shaped condensates form in multiple orbital states, carrying locked alternating π phase shifts and vortex-antivortex superposition cores, arising from the coupling of counterrotating exciton-polaritons in the confined circular waveguide. Our geometrically patterned microcavity exhibits promise for realizing room-temperature topological polaritonic devices and optical polaritonic switches based on periodic annular potentials.Entities:
Year: 2021 PMID: 33649295 DOI: 10.1038/s41377-021-00478-w
Source DB: PubMed Journal: Light Sci Appl ISSN: 2047-7538 Impact factor: 17.782