Resonant Energy Transfer Under the Influence of the Evanescent Field from the Metal
arXiv:1702.00373 · doi:10.1063/1.4990573
Abstract
We present a quantum framework based on a density matrix of a dimer system to investigate the quantum dynamics of excitation energy transfer (EET) in the presence of the evanescent field from the metal and the phonon bath. Due to the spatial correlation of the electric field in the vicinity of the metal, the spectral density of the evanescent field is similar to that of a shared phonon bath. However, the EET dynamics under the influence of the evanescent field is an open and a new problem. Here we use a thin metallic film to investigate the effect of the evanescent field on the excitation energy transfer in a dimer system based on a density matrix approach. Our results indicate that a thin metallic film enhances the energy transfer rate at the expense of absorbing energy during the process. Since the spectral density of the evanescent field is affected by the geometry of the medium and the distance of a dimer system from the medium, our results demonstrate the possibility to tune EET based on material geometry and distances. Our model also serves as an expansion to quantum heat engine model and provides a framework to investigate the EET in light harvesting molecular networks under the influence of the evanescent field.
20 pages, 7 figures, submitting to JCP
References in corpus (7)
- Fluctuating surface-current formulation of radiative heat transfer for arbitrary geometries
- Plexcitons: Dirac points and topological modes
- Near-field radiative heat transfer between arbitrarily-shaped objects and a surface
- Spontaneous emission from a quantum dot in a structured photonic reservoir: phonon-mediated breakdown of Fermi's golden rule
- Quantum transport in d-dimensional lattices
- Enhancement of Resonant Energy Transfer Due to Evanescent-wave from the Metal
- Construction of Multi-Chromophoric Spectra from Monomer Data: Applications to Resonant Energy Transfer