Tunes Matheus A, Greaves Graeme, Rack Philip D, Boldman Walker L, Schön Cláudio G, Pogatscher Stefan, Maloy Stuart A, Zhang Yanwen, El-Atwani Osman
Materials Science and Technology Division, Los Alamos National Laboratory, USA.
School of Computing and Engineering, University of Huddersfield, UK.
Nanoscale. 2021 Dec 16;13(48):20437-20450. doi: 10.1039/d1nr04915a.
In the field of radiation damage of crystalline solids, new highly-concentrated alloys (HCAs) are now considered to be suitable candidate materials for next generation fission/fusion reactors due to recently recorded outstanding radiation tolerance. Despite the preliminarily reported extraordinary properties, the mechanisms of degradation, phase instabilities and decomposition of HCAs are still largely unexplored fields of research. Herein, we investigate the response of a nanocrystalline CoCrCuFeNi HCA to thermal annealing and heavy ion irradiation in the temperature range from 293 to 773 K with the objective to analyze the stability of the nanocrystalline HCA in extreme conditions. The results led to the identification of two regimes of response to irradiation: (i) in which the alloy was observed to be tolerant under extreme irradiation conditions and (ii) in which the alloy is subject to matrix phase instabilities. The formation of FeCo monodomain nanoparticles under these conditions is also reported and a differential phase contrast study in the analytical electron-microscope is carried out to qualitatively probe its magnetic properties.
在晶体固体的辐射损伤领域,由于最近记录到的出色的耐辐射性,新型高浓缩合金(HCAs)现在被认为是下一代裂变/聚变反应堆的合适候选材料。尽管初步报道了其非凡的性能,但HCAs的降解、相不稳定和分解机制在很大程度上仍是未被探索的研究领域。在此,我们研究了纳米晶CoCrCuFeNi HCA在293至773 K温度范围内对热退火和重离子辐照的响应,目的是分析纳米晶HCA在极端条件下的稳定性。结果确定了两种辐照响应状态:(i)在极端辐照条件下合金表现出耐受性;(ii)合金出现基体相不稳定。还报道了在这些条件下FeCo单畴纳米颗粒的形成,并在分析电子显微镜中进行了差分相衬研究,以定性探测其磁性。