Accurate atomistic first-principles calculations of electronic stopping
Author(s) -
André Schleife,
Yosuke Kanai,
Alfredo A. Correa
Publication year - 2015
Publication title -
physical review b
Language(s) - English
Resource type - Journals
eISSN - 1538-4489
pISSN - 1098-0121
DOI - 10.1103/physrevb.91.014306
Subject(s) - projectile , pseudopotential , range (aeronautics) , electron , physics , electronic structure , stopping power , wave function , function (biology) , density functional theory , dielectric function , ion , dielectric , atomic physics , materials science , condensed matter physics , quantum mechanics , composite material , evolutionary biology , biology
We show that atomistic first-principles calculations based on real-time propagation within time-dependent density functional theory are capable of accurately describing electronic stopping of light projectile atoms in metal hosts over a wide range of projectile velocities. In particular, we employ a plane-wave pseudopotential scheme to solve time-dependent Kohn-Sham equations for representative systems of H and He projectiles in crystalline aluminum. This approach to simulate nonadiabatic electron-ion interaction provides an accurate framework that allows for quantitative comparison with experiment without introducing ad hoc parameters such as effective charges, or assumptions about the dielectric function. Our work clearly shows that this atomistic first-principles description of electronic stopping is able to disentangle contributions due to tightly bound semicore electrons and geometric aspects of the stopping geometry (channeling versus off-channeling) in a wide range of projectile velocities.
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