| Literature DB >> 21505432 |
Scott A Norris1, Juha Samela, Laura Bukonte, Marie Backman, Flyura Djurabekova, Kai Nordlund, Charbel S Madi, Michael P Brenner, Michael J Aziz.
Abstract
Energetic particle irradiation can cause surface ultra-smoothening, self-organized nanoscale pattern formation or degradation of the structural integrity of nuclear reactor components. A fundamental understanding of the mechanisms governing the selection among these outcomes has been elusive. Here we predict the mechanism governing the transition from pattern formation to flatness using only parameter-free molecular dynamics simulations of single-ion impacts as input into a multiscale analysis, obtaining good agreement with experiment. Our results overturn the paradigm attributing these phenomena to the removal of target atoms via sputter erosion: the mechanism dominating both stability and instability is the impact-induced redistribution of target atoms that are not sputtered away, with erosive effects being essentially irrelevant. We discuss the potential implications for the formation of a mysterious nanoscale topography, leading to surface degradation, of tungsten plasma-facing fusion reactor walls. Consideration of impact-induced redistribution processes may lead to a new design criterion for stability under irradiation.Entities:
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Year: 2011 PMID: 21505432 DOI: 10.1038/ncomms1280
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919