Tuning the Coherent Propagation of Organic Exciton-Polaritons through the Cavity Q-factor
arXiv:2304.13123 · doi:10.1002/advs.202302650
Abstract
Transport of excitons in organic materials can be enhanced through polariton formation when the interaction strength between these excitons and the confined light modes of an optical resonator exceeds their decay rates. While the polariton lifetime is determined by the Q(uality)-factor of the optical resonator, the polariton group velocity is not. Instead, the latter is solely determined by the polariton dispersion. Yet, experiments suggest that the Q-factor also controls the polariton propagation velocity. To understand this observation, we performed molecular dynamics simulations of Rhodamine chromophores strongly coupled to Fabry-Pérot cavities with various Q-factors. Our results suggest that propagation in the aforementioned experiments is initially dominated by ballistic motion of upper polariton states at their group velocities, which leads to a rapid expansion of the wavepacket. Cavity decay in combination with non-adiabatic population transfer into dark states, rapidly depletes these bright states, causing the wavepacket to contract. However, because population transfer is reversible, propagation continues, but as a diffusion process, at lower velocity. By controlling the lifetime of bright states, the Q-factor determines the duration of the ballistic phase and the diffusion coefficient in the diffusive regime. Thus, polariton propagation in organic microcavities can be effectively tuned through the Q-factor.
arXiv admin note: text overlap with arXiv:2209.07309
References in corpus (7)
- Strong coupling between surface plasmon polaritons and emitters
- Unveiling the mixed nature of polaritonic transport: From enhanced diffusion to ballistic motion approaching the speed of light
- Ultrafast imaging of polariton propagation and interactions
- Tuning the coherent propagation of organic exciton-polaritons through dark state delocalization
- Unusual Dynamical Properties of Disordered Polaritons in Micocavities
- Disorder-enhanced transport in a chain of lossy dipoles strongly coupled to cavity photons
- Tuning the Coherent Propagation of Organic Exciton-Polaritons through the Cavity Q-factor
Cited by in corpus (8)
- Enhanced Excitation Energy Transfer under Strong Light-Matter Coupling: Insights from Multi-Scale Molecular Dynamics Simulations
- Tuning the Coherent Propagation of Organic Exciton-Polaritons through the Cavity Q-factor
- Non-Hermitian molecular dynamics simulations of exciton-polaritons in lossy cavities
- Theoretical Analysis of Exciton Wave Packet Dynamics in Polaritonic Wires
- Photochemical Initiation of Polariton Propagation
- Mean-field Mixed Quantum-Classical Approach for Many-Body Quantum Dynamics of Exciton-Polaritons
- Multiple polaritonic edge states in a Su-Schrieffer-Heeger chain strongly coupled to a multimode cavity
- Microscopic Theory of Polaron-Polariton Dispersion and Propagation