Mechanism of Radiation Damage Reduction in Equiatomic Multicomponent Single Phase Alloys

被引:416
作者
Granberg, F. [1 ]
Nordlund, K. [1 ]
Ullah, Mohammad W. [1 ,2 ]
Jin, K. [2 ]
Lu, C. [3 ]
Bei, H. [2 ]
Wang, L. M. [3 ]
Djurabekova, F. [1 ,4 ]
Weber, W. J. [2 ,5 ]
Zhang, Y. [2 ]
机构
[1] Univ Helsinki, Dept Phys, POB 43, FIN-00014 Helsinki, Finland
[2] Oak Ridge Natl Lab, Mat Sci & Technol Div, Oak Ridge, TN 37831 USA
[3] Univ Michigan, Dept Nucl Engn & Radiol Sci, Ann Arbor, MI 48109 USA
[4] Univ Helsinki, Helsinki Inst Phys, POB 43, FIN-00014 Helsinki, Finland
[5] Univ Tennessee, Dept Mat Sci & Engn, Knoxville, TN 37996 USA
基金
芬兰科学院;
关键词
MOLECULAR-DYNAMICS SIMULATION; STRUCTURAL-MATERIALS; ION-IRRADIATION; FUSION; DISPLACEMENT; CLUSTERS; REACTORS; FISSION; ENERGY;
D O I
10.1103/PhysRevLett.116.135504
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Recently a new class of metal alloys, of single-phase multicomponent composition at roughly equal atomic concentrations ("equiatomic"), have been shown to exhibit promising mechanical, magnetic, and corrosion resistance properties, in particular, at high temperatures. These features make them potential candidates for components of next-generation nuclear reactors and other high-radiation environments that will involve high temperatures combined with corrosive environments and extreme radiation exposure. In spite of a wide range of recent studies of many important properties of these alloys, their radiation tolerance at high doses remains unexplored. In this work, a combination of experimental and modeling efforts reveals a substantial reduction of damage accumulation under prolonged irradiation in single-phase NiFe and NiCoCr alloys compared to elemental Ni. This effect is explained by reduced dislocation mobility, which leads to slower growth of large dislocation structures. Moreover, there is no observable phase separation, ordering, or amorphization, pointing to a high phase stability of this class of alloys.
引用
收藏
页数:8
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