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dc.contributor.authorJarrin, T.
dc.contributor.authorRichard, N.
dc.contributor.authorTeunissen, J.
dc.contributor.authorDa Pieve, F.
dc.contributor.authorHémeryck, A.
dc.date2021
dc.date.accessioned2022-01-06T12:45:49Z
dc.date.available2022-01-06T12:45:49Z
dc.identifier.urihttps://orfeo.belnet.be/handle/internal/9676
dc.descriptionThe inclusion of sophisticated density-dependent electronic stopping and electron-phonon coupling calculated with first-principles methods into molecular dynamics simulations of collision cascades has recently become possible thanks to the development of the so-called electron-phonon (EPH) model. This paper aims at employing the EPH model in molecular dynamics simulations of collision cascades in Si. In this context, the electronic stopping power is investigated in Si at low energies with Ehrenfest dynamics calculations. Also, the parametrization of the EPH model for Si, from first-principles Ehrenfest dynamics simulations to actual molecular dynamics simulations of collision cascades is performed and detailed. We demonstrate that the EPH model is able to reproduce very closely the density-dependent features of the energy lost to electrons obtained with ab initio calculations. Molecular dynamics collision cascade simulations results obtained in Si using the EPH model and the simpler but widely employed two-temperature model are compared, showing important discrepancies in the collision cascades results obtained depending on the model employed.
dc.languageeng
dc.titleIntegration of electronic effects into molecular dynamics simulations of collision cascades in silicon from first-principles calculations
dc.typeArticle
dc.subject.frascatiPhysical sciences
dc.audienceScientific
dc.subject.freeAtomic & molecular collisions
dc.subject.freeIrradiation effects
dc.subject.freeSemiconductors
dc.subject.freeDensity functional theory
dc.subject.freeMolecular dynamics
dc.subject.freeTime-dependent DFT
dc.source.titlePhysical Review B
dc.source.volume104
dc.source.issue19
dc.source.pageA195203
Orfeo.peerreviewedYes
dc.identifier.doi10.1103/PhysRevB.104.195203
dc.identifier.scopus


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