A quinary WTaCrVHf nanocrystalline refractory high-entropy alloy withholding extreme irradiation environments

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作者
O. El Atwani
H. T. Vo
M. A. Tunes
C. Lee
A. Alvarado
N. Krienke
J. D. Poplawsky
A. A. Kohnert
J. Gigax
W.-Y. Chen
M. Li
Y. Q. Wang
J. S. Wróbel
D. Nguyen-Manh
J. K. S. Baldwin
O. U. Tukac
E. Aydogan
S. Fensin
E. Martinez
机构
[1] Los Alamos National Laboratory,Materials Science and Technology Division
[2] Los Alamos National Laboratory,Center for Integrated Nanotechnology
[3] Auburn University,Department of Materials and Mechanical Engineering
[4] Los Alamos National Laboratory,Theoretical Division
[5] Clemson University,Departments of Mechanical Engineering and Materials Science and Engineering
[6] University of Wisconsin-Madison,Materials Science and Engineering
[7] Oak Ridge National Laboratory,Materials Science and Technology Division
[8] Argonne National Laboratory,Division of Nuclear Engineering
[9] Warsaw University of Technology,Faculty of Materials Science and Engineering
[10] ul. Wołoska,Culham Center for Fusion Energy
[11] United Kingdom Atomic Energy Authority,Department of Materials
[12] University of Oxford,Metallurgical and Materials Engineering
[13] Middle East Technical University,undefined
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摘要
In the quest of new materials that can withstand severe irradiation and mechanical extremes for advanced applications (e.g. fission & fusion reactors, space applications, etc.), design, prediction and control of advanced materials beyond current material designs become paramount. Here, through a combined experimental and simulation methodology, we design a nanocrystalline refractory high entropy alloy (RHEA) system. Compositions assessed under extreme environments and in situ electron-microscopy reveal both high thermal stability and radiation resistance. We observe grain refinement under heavy ion irradiation and resistance to dual-beam irradiation and helium implantation in the form of low defect generation and evolution, as well as no detectable grain growth. The experimental and modeling results—showing a good agreement—can be applied to design and rapidly assess other alloys subjected to extreme environmental conditions.
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