International audienceDensity functional (DFT) calculations have been used to investigate the stability of point defects in uranium dioxide. Correlation effects are taken into account within the DFT+U approach as implemented in the Vienna Ab initio Simulation Package (VASP). More particularly the formation energies of both intrinsic and extrinsic point defects, i.e. vacancies, interstitials, Frenkel pairs and Schottky trio defects are calculated. Our results are compared with available experimental data and are also compared to previous calculations based on conventional functionals such as the local spin-density approximation and generalized gradient approximations
International audienceWe combine density functional theory (DFT) formation energies and empirical po...
International audienceWe combine density functional theory (DFT) formation energies and empirical po...
International audienceNonstoichiometric uranium dioxide experiences a shrinkage of its lattice const...
International audienceDensity functional (DFT) calculations have been used to investigate the stabil...
International audienceDensity functional (DFT) calculations have been used to investigate the stabil...
International audienceDensity functional (DFT) calculations have been used to investigate the stabil...
International audienceOver the last decade, a significant amount of work has been devoted to point d...
International audienceOver the last decade, a significant amount of work has been devoted to point d...
International audienceOver the last decade, a significant amount of work has been devoted to point d...
International audienceOver the last decade, a significant amount of work has been devoted to point d...
International audienceFission product stability in nuclear fuels is investigated using density funct...
International audienceFission product stability in nuclear fuels is investigated using density funct...
International audienceFission product stability in nuclear fuels is investigated using density funct...
International audienceFission product stability in nuclear fuels is investigated using density funct...
International audienceWe combine density functional theory (DFT) formation energies and empirical po...
International audienceWe combine density functional theory (DFT) formation energies and empirical po...
International audienceWe combine density functional theory (DFT) formation energies and empirical po...
International audienceNonstoichiometric uranium dioxide experiences a shrinkage of its lattice const...
International audienceDensity functional (DFT) calculations have been used to investigate the stabil...
International audienceDensity functional (DFT) calculations have been used to investigate the stabil...
International audienceDensity functional (DFT) calculations have been used to investigate the stabil...
International audienceOver the last decade, a significant amount of work has been devoted to point d...
International audienceOver the last decade, a significant amount of work has been devoted to point d...
International audienceOver the last decade, a significant amount of work has been devoted to point d...
International audienceOver the last decade, a significant amount of work has been devoted to point d...
International audienceFission product stability in nuclear fuels is investigated using density funct...
International audienceFission product stability in nuclear fuels is investigated using density funct...
International audienceFission product stability in nuclear fuels is investigated using density funct...
International audienceFission product stability in nuclear fuels is investigated using density funct...
International audienceWe combine density functional theory (DFT) formation energies and empirical po...
International audienceWe combine density functional theory (DFT) formation energies and empirical po...
International audienceWe combine density functional theory (DFT) formation energies and empirical po...
International audienceNonstoichiometric uranium dioxide experiences a shrinkage of its lattice const...