Non-Hermitian molecular dynamics simulations of exciton-polaritons in lossy cavities
arXiv:2311.13453 · doi:10.1063/5.0188613
Abstract
The observation that materials can change their properties when placed inside or near an optical resonator, has sparked a fervid interest in understanding the effects of strong light-matter coupling on molecular dynamics, and several approaches have been proposed to extend the methods of computational chemistry into this regime. Whereas the majority of these approaches have focused on modelling a single molecule coupled to a single cavity mode, changes to chemistry have so far only been observed experimentally when very many molecules are coupled collectively to multiple modes with short lifetimes. While atomistic simulations of many molecules coupled to multiple cavity modes have been performed with semi-classical molecular dynamics, an explicit description of cavity losses has so far been restricted to simulations in which only a very few molecular degrees of freedom were considered. Here, we have implemented an effective non-Hermitian Hamiltonian to explicitly treat cavity losses in large-scale semi-classical molecular dynamics simulations of organic polaritons and used it to perform both mean-field and surface hopping simulations of polariton relaxation, propagation and energy transfer.
References in corpus (20)
- Canonical sampling through velocity-rescaling
- Strong coupling between surface plasmon polaritons and emitters
- Quantum theory of collective strong coupling of molecular vibrations with a microcavity mode
- Unveiling the mixed nature of polaritonic transport: From enhanced diffusion to ballistic motion approaching the speed of light
- Theory of Nanoscale Organic Cavities: The Essential Role of Vibration-Photon Dressed States
- Ultrafast imaging of polariton propagation and interactions
- Tuning the coherent propagation of organic exciton-polaritons through dark state delocalization
- A mapping approach to surface hopping
- Photoprotecting uracil by coupling with lossy nanocavities
- Enhanced Excitation Energy Transfer under Strong Light-Matter Coupling: Insights from Multi-Scale Molecular Dynamics Simulations
- A multi-state mapping approach to surface hopping
- Simulating Photodissociation Reactions in Bad Cavities with the Lindblad Equation
- Few-mode Field Quantization for Multiple Emitters
- Bi-Orthogonal Approach to Non-Hermitian Hamiltonians with the Oscillator Spectrum: Generalized Coherent States for Nonlinear Algebras
- QM/MM Modeling of Vibrational Polariton Induced Energy Transfer and Chemical Dynamics
- Molecular photodissociation enabled by ultrafast plasmon decay
- Tuning the Coherent Propagation of Organic Exciton-Polaritons through the Cavity Q-factor
- Quasi-Diabatic Propagation Scheme for Simulating Polariton Chemistry
- Ab initio calculations of quantum light-matter interactions in general electromagnetic environments
- molecular dynamics of temporary anions using complex absorbing potentials
Cited by in corpus (5)
- Photochemical Initiation of Polariton Propagation
- Probing plexciton dynamics with higher-order spectroscopy
- Disentangling enhanced diffusion and ballistic motion of excitons coupled to Bloch surface waves with molecular dynamics simulations
- Microcavity-Enhanced Exciton Dynamics in Light-Harvesting Complexes: Insights from Redfield Theory
- Indirect probing of light-induced nonadiabatic dynamics in lossy nanocavities