Chiroptical Response Inversion and Enhancement of Room-Temperature Exciton-Polaritons Using 2D Chirality in Perovskites
Overview
Authors
Affiliations
Although chiral semiconductors have shown promising progress in direct circularly polarized light (CPL) detection and emission, they still face potential challenges. A chirality-switching mechanism or approach integrating two enantiomers is needed to discriminate the handedness of a given CPL; additionally, a large material volume is required for sufficient chiroptical interaction. These two requirements pose significant obstacles to the simplification and miniaturization of the devices. Here, room-temperature chiral polaritons fulfilling dual-handedness functions and exhibiting a more-than-two-order enhancement of the chiroptical signal are demonstrated, by embedding a 40 nm-thick perovskite film with a 2D chiroptical effect into a Fabry-Pérot cavity. By mixing chiral perovskites with different crystal structures, a pronounced 2D chiroptical effect is accomplished in the perovskite film, featured by an inverted chiroptical response for counter-propagating CPL. This inversion behavior matches the photonic handedness switch during CPL circulation in the Fabry-Pérot cavity, thus harvesting giant enhancement of the chiroptical response. Furthermore, affected by the unique quarter-wave-plate effects, the polariton emission achieves a chiral dissymmetry of ±4% (for the emission from the front and the back sides). The room-temperature polaritons with the strong dissymmetric chiroptical interaction shall have implications on a fundamental level and future on-chip applications for biomolecule analysis and quantum computing.
A general model for designing the chirality of exciton-polaritons.
Bai P, Peng S Nanophotonics. 2025; 14(3):407-416.
PMID: 39967778 PMC: 11831404. DOI: 10.1515/nanoph-2024-0662.
Liu P, Zheng Y, Liu Z, Yang Z, Lu Z, Ai X Materials (Basel). 2025; 18(1.
PMID: 39795844 PMC: 11722041. DOI: 10.3390/ma18010200.
Giant chiral amplification of chiral 2D perovskites via dynamic crystal reconstruction.
Kim H, Choi W, Kim Y, Kim J, Ahn J, Song I Sci Adv. 2024; 10(34):eado5942.
PMID: 39167654 PMC: 11338236. DOI: 10.1126/sciadv.ado5942.
Salij A, Goldsmith R, Tempelaar R Nat Commun. 2024; 15(1):340.
PMID: 38184645 PMC: 10771534. DOI: 10.1038/s41467-023-44523-1.