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Microcavity-like exciton-polaritons can be the primary photoexcitation in bare organic semiconductors.


ABSTRACT: Strong-coupling between excitons and confined photonic modes can lead to the formation of new quasi-particles termed exciton-polaritons which can display a range of interesting properties such as super-fluidity, ultrafast transport and Bose-Einstein condensation. Strong-coupling typically occurs when an excitonic material is confided in a dielectric or plasmonic microcavity. Here, we show polaritons can form at room temperature in a range of chemically diverse, organic semiconductor thin films, despite the absence of an external cavity. We find evidence of strong light-matter coupling via angle-dependent peak splittings in the reflectivity spectra of the materials and emission from collective polariton states. We additionally show exciton-polaritons are the primary photoexcitation in these organic materials by directly imaging their ultrafast (5 × 106 m s-1), ultralong (~270 nm) transport. These results open-up new fundamental physics and could enable a new generation of organic optoelectronic and light harvesting devices based on cavity-free exciton-polaritons.

SUBMITTER: Pandya R 

PROVIDER: S-EPMC8585971 | biostudies-literature | 2021 Nov

REPOSITORIES: biostudies-literature

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Microcavity-like exciton-polaritons can be the primary photoexcitation in bare organic semiconductors.

Pandya Raj R   Chen Richard Y S RYS   Gu Qifei Q   Sung Jooyoung J   Schnedermann Christoph C   Ojambati Oluwafemi S OS   Chikkaraddy Rohit R   Gorman Jeffrey J   Jacucci Gianni G   Onelli Olimpia D OD   Willhammar Tom T   Johnstone Duncan N DN   Collins Sean M SM   Midgley Paul A PA   Auras Florian F   Baikie Tomi T   Jayaprakash Rahul R   Mathevet Fabrice F   Soucek Richard R   Du Matthew M   Alvertis Antonios M AM   Ashoka Arjun A   Vignolini Silvia S   Lidzey David G DG   Baumberg Jeremy J JJ   Friend Richard H RH   Barisien Thierry T   Legrand Laurent L   Chin Alex W AW   Yuen-Zhou Joel J   Saikin Semion K SK   Kukura Philipp P   Musser Andrew J AJ   Rao Akshay A  

Nature communications 20211111 1


Strong-coupling between excitons and confined photonic modes can lead to the formation of new quasi-particles termed exciton-polaritons which can display a range of interesting properties such as super-fluidity, ultrafast transport and Bose-Einstein condensation. Strong-coupling typically occurs when an excitonic material is confided in a dielectric or plasmonic microcavity. Here, we show polaritons can form at room temperature in a range of chemically diverse, organic semiconductor thin films,  ...[more]

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