4.8 Article

In situ nanocompression testing of irradiated copper

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NATURE MATERIALS
卷 10, 期 8, 页码 608-613

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NATURE PUBLISHING GROUP
DOI: 10.1038/NMAT3055

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  1. Berkeley Nuclear Research Centre (BNRC), established by the University of California Office of the President
  2. UC-National Laboratory
  3. Austrian Science Fund (FWF) through the Erwin Schrodinger fellowship [J2834-N20]
  4. US Department of Energy [DE-AC02-05CH11231]

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Increasing demand for energy and reduction of carbon dioxide emissions has revived interest in nuclear energy. Designing materials for radiation environments necessitates a fundamental understanding of how radiation-induced defects alter mechanical properties. Ion beams create radiation damage efficiently without material activation, but their limited penetration depth requires small-scale testing. However, strength measurements of nanoscale irradiated specimens have not been previously performed. Here we show that yield strengths approaching macroscopic values are measured from irradiated similar to 400 nm-diameter copper specimens. Quantitative in situ nanocompression testing in a transmission electron microscope reveals that the strength of larger samples is controlled by dislocation-irradiation defect interactions, yielding size-independent strengths. Below similar to 400 nm, size-dependent strength results from dislocation source limitation. This transition length-scale should be universal, but depends on material and irradiation conditions. We conclude that for irradiated copper, and presumably related materials, nanoscale in situ testing can determine bulk-like yield strengths and simultaneously identify deformation mechanisms.

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