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Shear-induced softening of nanocrystalline metal interfaces at cryogenic temperatures

  • Michael Chandross
  • , John F. Curry
  • , Tomas F. Babuska
  • , Ping Lu
  • , Timothy A. Furnish
  • , Andrew B. Kustas
  • , Brendan L. Nation
  • , Wayne L. Staats
  • , Nicolas Argibay

Research output: Contribution to journalArticlepeer-review

33 Scopus citations

Abstract

We demonstrate inverse Hall-Petch behavior (softening) in pure copper sliding contacts at cryogenic temperatures. By kinetically limiting grain growth, it is possible to generate a quasi-stable ultra-nanocrystalline surface layer with reduced strength. In situ electrical contact resistance measurements were used to determine grain size evolution at the interface, in agreement with reports of softening in highly nanotwinned copper. We also show evidence of a direct correlation between surface grain size and friction coefficient, validating a model linking friction in pure metals and the transition from dislocation mediated plasticity to grain boundary sliding.
Original languageEnglish
Pages (from-to)54-58
Number of pages5
JournalScripta Materialia
Volume143
DOIs
StatePublished - Jan 15 2018
Externally publishedYes

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