Enhanced Excitation Energy Transfer under Strong Light-Matter Coupling: Insights from Multi-Scale Molecular Dynamics Simulations
arXiv:2209.07309 · doi:10.1038/s41467-023-42067-y
Abstract
Exciton transport can be enhanced in the strong coupling regime where excitons hybridise with confined light modes to form polaritons. Because polaritons have group velocity, their propagation should be ballistic and long-ranged. However, experiments indicate that organic polaritons propagate in a diffusive manner and more slowly than their group velocity. Here, we resolve this controversy by means of molecular dynamics simulations of Rhodamine molecules in a Fabry-Pérot cavity. Our results suggest that polariton propagation is limited by the cavity lifetime and appears diffusive due to reversible population transfers between polaritonic states that propagate ballistically at their group velocity, and dark states that are stationary. Furthermore, because long-lived dark states transiently trap the excitation, propagation is observed on timescales beyond the intrinsic polariton lifetime. These insights not only help to better understand and interpret experimental observations, but also pave the way towards rational design of molecule-cavity systems for coherent exciton transport.
References in corpus (18)
- Strong coupling between surface plasmon polaritons and emitters
- Extraordinary exciton conductance induced by strong coupling
- Cavity enhanced transport of excitons
- Quantum theory of collective strong coupling of molecular vibrations with a microcavity mode
- Theoretical Challenges in Polaritonic Chemistry
- 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
- Motional narrowing, ballistic transport, and trapping of room-temperature exciton polaritons in an atomically-thin semiconductor
- Polariton Localization and Dispersion Properties of Disordered Quantum Emitters in Multimode Microcavities
- Unusual Dynamical Properties of Disordered Polaritons in Micocavities
- Enhanced Excitation Energy Transfer under Strong Light-Matter Coupling: Insights from Multi-Scale Molecular Dynamics Simulations
- Disorder enhanced vibrational entanglement and dynamics in polaritonic chemistry
- Population of Exciton-Polaritons via Luminescent sp Defects in Single-Walled Carbon Nanotubes
- 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
- Theoretical Analysis of Exciton Wave Packet Dynamics in Polaritonic Wires
- Understanding polaritonic chemistry from ab initio quantum electrodynamics
Cited by in corpus (16)
- Enhanced Excitation Energy Transfer under Strong Light-Matter Coupling: Insights from Multi-Scale Molecular Dynamics Simulations
- When do molecular polaritons behave like optical filters?
- Investigating the Collective Nature of Cavity Modified Chemical Kinetics under Vibrational Strong Coupling
- Non-Hermitian molecular dynamics simulations of exciton-polaritons in lossy cavities
- Coherent transient exciton transport in disordered polaritonic wires
- Polaritonic Quantum Matter
- Photochemical Initiation of Polariton Propagation
- Mean-field Mixed Quantum-Classical Approach for Many-Body Quantum Dynamics of Exciton-Polaritons
- Exciton Delocalization Suppresses Polariton Scattering
- Disentangling enhanced diffusion and ballistic motion of excitons coupled to Bloch surface waves with molecular dynamics simulations
- The role of dark polariton states for electronic strong coupling in molecules
- Microscopic Theory of Polaron-Polariton Dispersion and Propagation
- Dissecting Exciton-Polariton Transport in Organic Molecular Crystals: Emerging Conductivity Assisted by Intermolecular Vibrational Coupling
- Robust Surface-Induced Enhancement of Exciton Transport in Magic-Angle-Oriented Molecular Aggregates
- Enhanced photoisomerization with hybrid metallodielectric cavities based on mode interference
- Deep quantum Monte Carlo approach for polaritonic chemistry