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First-principles theory of the luminescence lineshape for the triplet transition in diamond NV centre

TLDR
In this paper, the vibronic structure of the spin-triplet optical transition in diamond nitrogen-vacancy centres is described using accurate first-principles methods based on hybrid functionals.
Abstract
In this work we present theoretical calculations and analysis of the vibronic structure of the spin-triplet optical transition in diamond nitrogen-vacancy centres. The electronic structure of the defect is described using accurate first-principles methods based on hybrid functionals. We devise a computational methodology to determine the coupling between electrons and phonons during an optical transition in the dilute limit. As a result, our approach yields a smooth spectral function of electron-phonon coupling and includes both quasi-localized and bulk phonons on equal footings. The luminescence lineshape is determined via the generating function approach. We obtain a highly accurate description of the luminescence band, including all key parameters such as the Huang-Rhys factor, the Debye-Waller factor, and the frequency of the dominant phonon mode. More importantly, our work provides insight into the vibrational structure of nitrogen vacancy centres, in particular the role of local modes and vibrational resonances. In particular, we find that the pronounced mode at 65 meV is a vibrational resonance, and we quantify localization properties of this mode. These excellent results for the benchmark diamond nitrogen-vacancy centre provide confidence that the procedure can be applied to other defects, including alternative systems that are being considered for applications in quantum information processing.

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Tutorial: Defects in semiconductors—Combining experiment and theory

TL;DR: In this paper, the authors focus on processes that can be analyzed or understood in terms of configuration coordinate diagrams of defects in their different charge states, such as light absorption, luminescence, and nonradiative capture of charge carriers.
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Temperature Dependence of Wavelength Selectable Zero-Phonon Emission from Single Defects in Hexagonal Boron Nitride

TL;DR: Temperature-dependent results are well described by a lattice vibration model that considers piezoelectric coupling to in-plane phonons and polarization spectroscopy measurements suggest that whereas the 575 nm emission line is directly excited by 532 nm excitation, the 682 nm line is excited indirectly.
Journal ArticleDOI

Native point defects and impurities in hexagonal boron nitride

TL;DR: In this article, the defect properties of hexagonal boron nitride (h$-BN) were investigated and it was shown that the defect physics of this material is dictated by impurities, in particular carbon, oxygen, and hydrogen.
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First-principles investigation of quantum emission from hBN defects

TL;DR: In this article, the authors performed density functional theory (DFT) and constrained DFT calculations for a range of hBN point defects in order to identify potential emission candidates by applying a number of criteria on the electronic structure of the ground state and the atomic structure of excited states of the considered defects, and then calculating the Huang-Rhys factor.
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Optical Signatures of Quantum Emitters in Suspended Hexagonal Boron Nitride

TL;DR: These measurements constrain possible defect models and suggest that several classes of emitters can exist simultaneously throughout free-standing h-BN, whether they be different defects, different charge states of the same defect, or the result of strong local perturbations.
References
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Journal ArticleDOI

Generalized Gradient Approximation Made Simple

TL;DR: A simple derivation of a simple GGA is presented, in which all parameters (other than those in LSD) are fundamental constants, and only general features of the detailed construction underlying the Perdew-Wang 1991 (PW91) GGA are invoked.
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Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set.

TL;DR: An efficient scheme for calculating the Kohn-Sham ground state of metallic systems using pseudopotentials and a plane-wave basis set is presented and the application of Pulay's DIIS method to the iterative diagonalization of large matrices will be discussed.
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Projector augmented-wave method

TL;DR: An approach for electronic structure calculations is described that generalizes both the pseudopotential method and the linear augmented-plane-wave (LAPW) method in a natural way and can be used to treat first-row and transition-metal elements with affordable effort and provides access to the full wave function.
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From ultrasoft pseudopotentials to the projector augmented-wave method

TL;DR: In this paper, the formal relationship between US Vanderbilt-type pseudopotentials and Blochl's projector augmented wave (PAW) method is derived and the Hamilton operator, the forces, and the stress tensor are derived for this modified PAW functional.
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QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials

TL;DR: QUANTUM ESPRESSO as discussed by the authors is an integrated suite of computer codes for electronic-structure calculations and materials modeling, based on density functional theory, plane waves, and pseudopotentials (norm-conserving, ultrasoft, and projector-augmented wave).
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