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Influence of chemical disorder on energy dissipation and defect evolution in concentrated solid solution alloys

  • Yanwen Zhang
  • , G. Malcolm Stocks
  • , Ke Jin
  • , Chenyang Lu
  • , Hongbin Bei
  • , Brian C. Sales
  • , Lumin Wang
  • , Laurent K. Béland
  • , Roger E. Stoller
  • , German D. Samolyuk
  • , Magdalena Caro
  • , Alfredo Caro
  • , William J. Weber
  • Oak Ridge National Laboratory
  • University of Tennessee
  • University of Michigan, Ann Arbor
  • Computational Earth Science, Earth and Environmental Sciences Division, Los Alamos National Laboratory

Research output: Contribution to journalArticlepeer-review

629 Scopus citations

Abstract

A grand challenge in materials research is to understand complex electronic correlation and non-equilibrium atomic interactions, and how such intrinsic properties and dynamic processes affect energy transfer and defect evolution in irradiated materials. Here we report that chemical disorder, with an increasing number of principal elements and/or altered concentrations of specific elements, in single-phase concentrated solid solution alloys can lead to substantial reduction in electron mean free path and orders of magnitude decrease in electrical and thermal conductivity. The subsequently slow energy dissipation affects defect dynamics at the early stages, and consequentially may result in less deleterious defects. Suppressed damage accumulation with increasing chemical disorder from pure nickel to binary and to more complex quaternary solid solutions is observed. Understanding and controlling energy dissipation and defect dynamics by altering alloy complexity may pave the way for new design principles of radiation-tolerant structural alloys for energy applications.

Original languageEnglish
Article number8736
JournalNature Communications
Volume6
DOIs
StatePublished - 28 Oct 2015
Externally publishedYes

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