Microscopic processes during ultra-fast laser generation of Frenkel defects in diamond
arXiv:2105.11894 · doi:10.1103/PhysRevB.104.174303
Abstract
Engineering single atomic defects into wide bandgap materials has become an attractive field in recent years due to emerging applications such as solid-state quantum bits and sensors. The simplest atomic-scale defect is the lattice vacancy which is often a constituent part of more complex defects such as the nitrogen-vacancy (NV) centre in diamond, therefore an understanding of the formation mechanisms and precision engineering of vacancies is desirable. We present a theoretical and experimental study into the ultra-fast laser generation of vacancy-interstitial pairs (Frenkel defects) in diamond. The process is described by a set of coupled rate equations of the pulsed laser interaction with the material and of the non-equilibrium dynamics of charge carriers during and in the wake of the pulse. We find that a model for Frenkel defect generation via the recombination of a bound biexciton as the electron plasma cools provides good agreement with experimental data, reproducing an effective non-linearity of 40 for Frenkel defect generation with respect to laser pulse energy.
17 pages, 11 figures
References in corpus (3)
- Quantum Memories. A Review based on the European Integrated Project "Qubit Applications (QAP)"
- Comparing electron-phonon coupling strength in diamond, silicon and silicon carbide: First-principles study
- Low charge-noise nitrogen-vacancy centers in diamond created using laser writing with a solid-immersion lens