A first-principles calculation of electron-phonon interactions for the and defects in hexagonal boron nitride
arXiv:2207.14411 · doi:10.1088/1361-648X/acde2b
Abstract
Quantum emitters in two-dimensional hexagonal boron nitride (h-BN) have generated significant interest due to observations of ultra-bright emission made at room temperature. The expectation that solid-state emitters exhibit broad zero-phonon lines at elevated temperatures has been put in question by recent observations of Fourier transform (FT) limited photons emitted from h-BN flakes at room temperature. The mechanism responsible for the narrow lines has been suggested to be a mechanical decoupling from in-plane phonons due to an out-of-plane distortion of the emitter's orbitals. All decoupled emitters produce photons that are directed in-plane, suggesting that the dipoles are oriented perpendicular to the h-BN plane. Motivated by the promise of an efficient and scalable source of indistinguishable photons that can operate at room temperature, we have developed an approach using density functional theory (DFT) to determine the electron-phonon coupling for defects that have in- and out-of-plane transition dipole moments. Our DFT calculations reveal that the defect has an in-plane transition dipole moment, and that of the defect is perpendicular to the plane. We exploit the two-dimensional framework recently implemented in \texttt{QUANTUM ESPRESSO} to determine both the phonon density of states and the electron-phonon matrix elements associated with the h-BN defective structures. We find no indication that an out-of-plane transition dipole is sufficient to obtain FT-limited photons at room temperature. Our work also provides direction to future DFT software developments and adds to the growing list of calculations relevant to researchers in the field of solid-state quantum information processing.
11 pages, 4 figures
References in corpus (16)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Quantum ESPRESSO toward the exascale
- Identifying Carbon as the Source of Visible Single Photon Emission from Hexagonal Boron Nitride
- Stark shift control of single optical centers in diamond
- First-principles theory of the luminescence lineshape for the triplet transition in diamond NV centre
- Ab initio supercell calculations on nitrogen-vacancy center in diamond: its electronic structure and hyperfine tensors
- Electron-phonon processes of the silicon-vacancy centre in diamond
- Finite-size correction in many-body electronic structure calculations
- First-principles identification of single photon emitters based on carbon clusters in hexagonal boron nitride
- Vibrational and vibronic structure of isolated point defects: the nitrogen-vacancy center in diamond
- Mechanical Decoupling of Quantum Emitters in Hexagonal Boron Nitride from Low-Energy Phonon Modes
- Giant shift upon strain on the fluorescence spectrum of VN color centers in -BN
- Carbon and vacancy centers in hexagonal boron nitride
- and group theoretical study of properties of the carbon trimer defect in h-BN
- Single photon randomness originating from the symmetry of dipole emission and the unpredictability of spontaneous emission