Enhancing radiation tolerance by controlling defect mobility and migration pathways in multicomponent single-phase alloys

A grand challenge in material science is to understand the correlation between intrinsic properties and defect dynamics. Radiation tolerant materials are in great demand for safe operation and advancement of nuclear and aerospace systems. Unlike traditional approaches that rely on microstructural an...

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Veröffentlicht in:Nature communications 2016-12, Vol.7 (1), p.13564-13564, Article 13564
Hauptverfasser: Lu, Chenyang, Niu, Liangliang, Chen, Nanjun, Jin, Ke, Yang, Taini, Xiu, Pengyuan, Zhang, Yanwen, Gao, Fei, Bei, Hongbin, Shi, Shi, He, Mo-Rigen, Robertson, Ian M., Weber, William J., Wang, Lumin
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Sprache:eng
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Zusammenfassung:A grand challenge in material science is to understand the correlation between intrinsic properties and defect dynamics. Radiation tolerant materials are in great demand for safe operation and advancement of nuclear and aerospace systems. Unlike traditional approaches that rely on microstructural and nanoscale features to mitigate radiation damage, this study demonstrates enhancement of radiation tolerance with the suppression of void formation by two orders magnitude at elevated temperatures in equiatomic single-phase concentrated solid solution alloys, and more importantly, reveals its controlling mechanism through a detailed analysis of the depth distribution of defect clusters and an atomistic computer simulation. The enhanced swelling resistance is attributed to the tailored interstitial defect cluster motion in the alloys from a long-range one-dimensional mode to a short-range three-dimensional mode, which leads to enhanced point defect recombination. The results suggest design criteria for next generation radiation tolerant structural alloys. Radiation tolerance is a property determined both by materials structure and defect dynamics. Here authors demonstrate enhancement of radiation tolerance at elevated temperatures in equiatomic single-phase concentrated solid solution alloys and propose an underlying mechanism.
ISSN:2041-1723
2041-1723
DOI:10.1038/ncomms13564