Projects per year
Abstract
We study how polariton condensation modifies charge transport in organic materials. In typical organic materials, charge transport proceeds via incoherent hopping. We therefore provide an approach to determine how the rate and final state of this hopping process is affected by strong matter-light coupling and polariton condensation. We show how the hopping process may create excitations when starting from a state with a finite excitation density. That is, how hopping can change the state of a lower polariton condensate by creating upper polaritons, optically inactive excitonic dark states, or by exciting vibrational sidebands. While the matrix elements for these processes can be large, for typical materials at room temperature, such excitations are suppressed by thermal factors, and ground state processes dominate. We thus study how the ground state hopping rate depends on condensate density, matter-light coupling, and cavity photon detuning. All these factors change the vibrational configuration associated with the optically active molecules, which can enhance or suppress hopping by increasing or decreasing the vibrational overlap with the state of a charged molecule. We show that hopping rates can be exponentially sensitive to detuning and condensate density, allowing an increase or decrease of hopping rate by two orders of magnitude.
Original language | English |
---|---|
Article number | 195109 |
Number of pages | 18 |
Journal | Physical Review B |
Volume | 106 |
Issue number | 19 |
Early online date | 3 Nov 2022 |
DOIs | |
Publication status | Published - 15 Nov 2022 |
Fingerprint
Dive into the research topics of 'Incoherent charge transport in an organic polariton condensate'. Together they form a unique fingerprint.Projects
- 1 Finished
-
Hybrid Polaritonics: Hybrid Polaritonics
Samuel, I. D. W. (PI), Höfling, S. (CoI), Keeling, J. M. J. (CoI) & Turnbull, G. (CoI)
1/09/15 → 31/08/20
Project: Standard
Datasets
-
Data underpinning: Incoherent charge transport in an organic polariton condensate
Zeb, M. A. (Creator), Kirton, P. G. (Creator) & Keeling, J. M. J. (Creator), University of St Andrews, 9 Nov 2022
DOI: 10.17630/3c257a29-a25d-4fab-afb7-5c8bc4dc8021
Dataset
File