Orientation-dependent spontaneous emission rates of a two-level quantum emitter in any nanophotonic environment
arXiv:0902.1862 · doi:10.1103/PhysRevA.80.053802
Abstract
We study theoretically the rate of spontaneous emission of a two-level quantum emitter embedded in realistic systems: near a mirror, near a plasmonic sphere, or in a 3D photonic bandgap crystal. At constant frequency and position, we find striking (up to ) variations in emission rate by varying the orientation of the transition dipole moment. We present a general representation of rate versus orientation that only invokes symmetry of the Green function. The concomitant 3-dimensional geometric surfaces provide much insight in how preferred orientations for enhancement (or inhibition) depend on the emitter's frequency and location, and on optimal strategies to actively switch emission rates by controlling oriented dipoles.
5 figures
References in corpus (6)
- The Quantum Internet
- On-command enhancement of single molecule fluorescence using a gold nanoparticle as an optical nano-antenna
- Controlling the Spontaneous Emission Rate of Single Quantum Dots in a 2D Photonic Crystal
- Modifcation of single molecule fluorescence close to a nanostructure: radiation pattern, spontaneous emission and quenching
- Strongly nonexponential time-resolved fluorescence of quantum-dot ensembles in three-dimensional photonic crystals
- Spontaneous emission rates of dipoles in photonic crystal membranes
Cited by in corpus (13)
- Nonlocal Response of Metallic Nanospheres Probed by Light, Electrons, and Atoms
- Inhibited spontaneous emission of quantum dots observed in a 3D photonic band gap
- Observation of Spatial Fluctuations of the Local Density of States in Random Media
- Classical antennae, quantum emitters, and densities of optical states
- Foerster resonance energy transfer rate and local density of optical states are uncorrelated in any dielectric nanophotonic medium
- Generalizing normal mode expansion of electromagnetic Green's tensor to lossy resonators in open systems
- Local density of optical states in the band gap of a finite photonic crystal
- Calibrating and Controlling the Quantum Efficiency Distribution of Inhomogeneously Broadened Quantum Rods Using a Mirror Ball
- The local density of optical states in the 3D band gap of a finite photonic crystal
- Non-exponential spontaneous emission dynamics for emitters in a time-dependent optical cavity
- Gray-Tone Lithography Implementation of Drexhage's Method for Calibrating Radiative and Nonradiative Decay Constants of Fluorophores
- DNA-Assembled Multilayer Sliding Nanosystems
- Transfer of arbitrary quantum emitter states to near-field photon superpositions in nanocavities