| Literature DB >> 34552252 |
Anton V Zasedatelev1,2, Anton V Baranikov3,4, Denis Sannikov3,4, Darius Urbonas5, Fabio Scafirimuto5, Vladislav Yu Shishkov3,4,6,7, Evgeny S Andrianov3,4,6,7, Yurii E Lozovik3,4,6,8,9, Ullrich Scherf10, Thilo Stöferle5, Rainer F Mahrt5, Pavlos G Lagoudakis11,12,13.
Abstract
The recent progress in nanotechnology1,2 and single-molecule spectroscopy3-5 paves the way for emergent cost-effective organic quantum optical technologies with potential applications in useful devices operating at ambient conditions. We harness a π-conjugated ladder-type polymer strongly coupled to a microcavity forming hybrid light-matter states, so-called exciton-polaritons, to create exciton-polariton condensates with quantum fluid properties. Obeying Bose statistics, exciton-polaritons exhibit an extreme nonlinearity when undergoing bosonic stimulation6, which we have managed to trigger at the single-photon level, thereby providing an efficient way for all-optical ultrafast control over the macroscopic condensate wavefunction. Here, we utilize stable excitons dressed with high-energy molecular vibrations, allowing for single-photon nonlinear operation at ambient conditions. This opens new horizons for practical implementations like sub-picosecond switching, amplification and all-optical logic at the fundamental quantum limit.Entities:
Year: 2021 PMID: 34552252 DOI: 10.1038/s41586-021-03866-9
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962