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The nature of high-energy radiation damage in iron: Modeling results

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arxiv 1211.6147 v1 pith:FEGPFZV6 submitted 2012-11-26 cond-mat.mtrl-sci

The nature of high-energy radiation damage in iron: Modeling results

classification cond-mat.mtrl-sci
keywords radiationdamagehigh-energycascadesclusterscollisionfindiron
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Understanding and predicting a material's performance in response to high-energy radiation damage, as well as designing future materials to be used in intense radiation environments, requires the knowledge of the structure, morphology and amount of radiation-induced structural change. We report the results of molecular dynamics simulations of high-energy radiation damage in iron in the range 0.2-0.5 MeV. We analyze and quantify the nature of collision cascades both at the global and local scale. We find that the structure of high-energy collision cascades becomes increasingly continuous as opposed to showing sub-cascade branching reported previously. At the local length scale, we find large defect clusters and novel small vacancy and interstitial clusters. These features form the basis for physical models aimed at understanding the effects of high energy radiation damage in structural materials.

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