© 2020 American Physical Society. We report diffusion quantum Monte Carlo (DMC) and many-body GW calculations of the electronic band gaps of monolayer and bulk hexagonal boron nitride (hBN). We find the monolayer band gap to be indirect. GW predicts much smaller quasiparticle gaps at both the single-shot G0W0 and the partially self-consistent GW0 levels. In contrast, solving the Bethe-Salpeter equation on top of the GW0 calculation yields an exciton binding energy for the direct exciton at the K point in close agreement with the DMC value. Vibrational renormalization of the electronic band gap is found to be significant in both the monolayer and the bulk. Taking vibrational effects into account, DMC overestimates the band gap of bulk hBN, w...
We present state of the art first-principles calculations of optical spectra and the loss function o...
Research on the effect of alternative doping on the photoelectric properties of boron nitride is sti...
We present state of the art fist-principles calculations for the optical spectra and the loss functi...
19 pages, 14 figures, 7 appendixesInternational audienceWe present a detailed discussion of the elec...
840-845Density functional theory (DFT) description of electronic structure and related properties of...
peer reviewedWe present a detailed discussion of the electronic band structure and excitonic dispers...
We explain the nature of the electronic energy gap and optical absorption spectrum of carbon-boron-n...
International audienceThis work examines the importance of vibrational delocalization on a basic the...
We explain the nature of the electronic energy gap and optical absorption spectrum of carbon–boron-n...
We examine the effects of stacking sequence and number of layers on the electronic and luminescence ...
Using density functional theory with local and non-local exchange and correlation (XC) functionals, ...
We theoretically study physical properties of the most promising color center candidates for the rec...
Two dimensional materials, which are systems composed of one or several angstrom-thin layers of atom...
International audienceHexagonal boron nitride is a large band-gap insulating material which compleme...
We present state of the art first-principles calculations of optical spectra and the loss function o...
Research on the effect of alternative doping on the photoelectric properties of boron nitride is sti...
We present state of the art fist-principles calculations for the optical spectra and the loss functi...
19 pages, 14 figures, 7 appendixesInternational audienceWe present a detailed discussion of the elec...
840-845Density functional theory (DFT) description of electronic structure and related properties of...
peer reviewedWe present a detailed discussion of the electronic band structure and excitonic dispers...
We explain the nature of the electronic energy gap and optical absorption spectrum of carbon-boron-n...
International audienceThis work examines the importance of vibrational delocalization on a basic the...
We explain the nature of the electronic energy gap and optical absorption spectrum of carbon–boron-n...
We examine the effects of stacking sequence and number of layers on the electronic and luminescence ...
Using density functional theory with local and non-local exchange and correlation (XC) functionals, ...
We theoretically study physical properties of the most promising color center candidates for the rec...
Two dimensional materials, which are systems composed of one or several angstrom-thin layers of atom...
International audienceHexagonal boron nitride is a large band-gap insulating material which compleme...
We present state of the art first-principles calculations of optical spectra and the loss function o...
Research on the effect of alternative doping on the photoelectric properties of boron nitride is sti...
We present state of the art fist-principles calculations for the optical spectra and the loss functi...