Authors
Y Chen, K Y Yu, Y Liu, S Shao, H Wang, MA Kirk, J Wang, X Zhang
Publication date
2015/4/24
Journal
Nature communications
Volume
6
Issue
1
Pages
7036
Publisher
Nature Publishing Group UK
Description
Material performance in extreme radiation environments is central to the design of future nuclear reactors. Radiation induces significant damage in the form of dislocation loops and voids in irradiated materials, and continuous radiation often leads to void growth and subsequent void swelling in metals with low stacking fault energy. Here we show that by using in situ heavy ion irradiation in a transmission electron microscope, pre-introduced nanovoids in nanotwinned Cu efficiently absorb radiation-induced defects accompanied by gradual elimination of nanovoids, enhancing radiation tolerance of Cu. In situ studies and atomistic simulations reveal that such remarkable self-healing capability stems from high density of coherent and incoherent twin boundaries that rapidly capture and transport point defects and dislocation loops to nanovoids, which act as storage bins for interstitial loops. This study describes a …
Total citations
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Scholar articles
Y Chen, KY Yu, Y Liu, S Shao, H Wang, MA Kirk… - Nature communications, 2015