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Strain effect on the defect formation and diffusion in Ti2AlC and Ti3AlC2: A first-principles study | |
2023-02-05 | |
发表期刊 | COMPUTATIONAL MATERIALS SCIENCE (IF:3.1[JCR-2023],3.2[5-Year]) |
ISSN | 0927-0256 |
EISSN | 1879-0801 |
卷号 | 218 |
发表状态 | 已发表 |
DOI | 10.1016/j.commatsci.2022.111946 |
摘要 | Mn+1AXn phases have the prospect of being the candidate materials as coating and fuel cladding in advanced nuclear systems. It is well known that nuclear materials are subjected to harsh environments such as high temperature, high pressure, and neutron radiation et al. during their application. Consequently, defects and strains inevitably arise in Mn+1AXn phases used as nuclear materials. In this work, by using a first-principles method, the strain effects on the defect formation and diffusion in Ti2AlC and Ti3AlC2 were studied by imposing an equibiaxial in-plane strain along the a and b (denoted as ab) axes. The formation energies of Ti vacancies are substantially larger than those of Al and C vacancies. As the imposed equibiaxial strain goes from compressive to tensile state with strain ranges from -4% to 4%, the formation energies of Ti and C vacancies increase, while the formation energy of Al vacancy decreases. The formation energies of the antisite defect TiAlAlTi, the substitutional defect AlTi, and the substitutional defect TiAl all increase with the applied biaxial strain. In both Ti2AlC and Ti3AlC2, the process of Al atom diffusing to the Ti vacancy is energetically favorable, conversely, the process of Ti atom diffusing to the Al vacancy is energetically unfavorable. Therefore, the diffusion of Al atom is expected to play an important role in the microstructural evolution under irradiation environments. According to our research about the atomic diffusions at different strains, atomic diffusion across the atomic layer can be slowed down under the compressive strain along the ab axes. As a consequence, the MAX materials show better microstructural stability and improved radiation resistance. That is, the irradiation resistance of the MAX materials can be improved when they are applied under a certain compressive strain in nuclear systems. |
关键词 | MAX phase materials Defects Formation energy Diffusion Strain effect |
URL | 查看原文 |
收录类别 | SCI ; EI ; SCOPUS |
语种 | 英语 |
资助项目 | National Key Research and Devel- opment Program of China[2021FYB3501004] ; National Natural Science Foundation of China[ |
WOS研究方向 | Materials Science |
WOS类目 | Materials Science, Multidisciplinary |
WOS记录号 | WOS:000920413200001 |
出版者 | ELSEVIER |
EI入藏号 | 20225113270083 |
EI主题词 | Atoms |
EI分类号 | 541.1 Aluminum ; 542.3 Titanium and Alloys ; 931.3 Atomic and Molecular Physics ; 933.1.1 Crystal Lattice ; 951 Materials Science |
原始文献类型 | Journal article (JA) |
引用统计 | 正在获取...
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文献类型 | 期刊论文 |
条目标识符 | https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/278838 |
专题 | 大科学中心_公共科研平台_大科学装置建设部 |
通讯作者 | Ren, Cuilan; Huai, Ping |
作者单位 | 1.Changzhou Inst Technol, Sch Sci, Changzhou 213032, Peoples R China 2.Chinese Acad Sci, Shanghai Inst Appl Phys, Shanghai 201800, Peoples R China 3.Henan Inst Technol, Sch Sci, Xinxiang 453003, Peoples R China 4.ShanghaiTech Univ, Ctr Transformat Sci, Shanghai 201210, Peoples R China 5.ShanghaiTech Univ, Shanghai High Repetit Rate XFEL & Extreme Light Fa, Shanghai 201210, Peoples R China 6.Chinese Acad Sci, Shanghai Adv Res Inst, Shanghai 201210, Peoples R China |
通讯作者单位 | 上海科技大学 |
推荐引用方式 GB/T 7714 | Wang, Changying,Ren, Cuilan,Guo, Yongliang,et al. Strain effect on the defect formation and diffusion in Ti2AlC and Ti3AlC2: A first-principles study[J]. COMPUTATIONAL MATERIALS SCIENCE,2023,218. |
APA | Wang, Changying.,Ren, Cuilan.,Guo, Yongliang.,Wan, Zhilong.,Qin, Sai.,...&Huai, Ping.(2023).Strain effect on the defect formation and diffusion in Ti2AlC and Ti3AlC2: A first-principles study.COMPUTATIONAL MATERIALS SCIENCE,218. |
MLA | Wang, Changying,et al."Strain effect on the defect formation and diffusion in Ti2AlC and Ti3AlC2: A first-principles study".COMPUTATIONAL MATERIALS SCIENCE 218(2023). |
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