Quantum optical master equation for solid-state quantum emitters
arXiv:1411.0864 · doi:10.1103/PhysRevA.90.063818
Abstract
We provide an elementary description of the dynamics of defect centers in crystals in terms of a quantum optical master equation which includes spontaneous decay and a simplified vibronic interaction with lattice phonons. We present the general solution of the dynamical equation by means of the eigensystem of the Liouville operator and exemplify the usage of this damping basis to calculate the dynamics of the electronic and vibrational degrees of freedom and to provide an analysis of the spectra of scattered light. The dynamics and spectral features are discussed with respect to the applicability for color centers, especially for negatively charged nitrogen-vacancy centers in diamond.
13 pages, 4 figures
References in corpus (4)
- Experimental realization of Wheeler's delayed-choice GedankenExperiment
- Scanning magnetic field microscope with a diamond single-spin sensor
- The negatively charged nitrogen-vacancy centre in diamond: the electronic solution
- Towards a picosecond transform-limited nitrogen-vacancy based single photon source
Cited by in corpus (4)
- Entangling distant solid-state spins via thermal phonons
- Laser and cavity cooling of a mechanical resonator with a Nitrogen-Vacancy center in diamond
- Time- and frequency-domain two-particle correlations of a driven dissipative Bose-Hubbard model
- Modified coherence of quantum spins in a damped pure-dephasing model