论文标题
弹性偶极张量和浓缩随机磁性Fe-Cr合金中点缺陷的松弛体积
Elastic dipole tensors and relaxation volumes of point defects in concentrated random magnetic Fe-Cr alloys
论文作者
论文摘要
使用密度功能理论和弹性理论研究了以身体为中心的立方FE,CR和浓缩随机磁Fe-CR中的点缺陷。铁磁BCC Fe中替代性Cr原子的体积大约比宿主Fe原子的体积大约18%,而抗磁磁BCC Cr中替代的Fe原子的体积小于宿主CROM的体积小5 \%。弹性偶极$ \ boldsymbol {p} $和放松体积$ \boldsymbolΩ$张紧的空缺和自相互构原子(SIA)缺陷(SIA)缺陷显示出很大的波动,空缺具有负面和SIA大阳性宽松量。空缺的偶极张量在整个合金组成范围内几乎是各向同性的,对角元素$ p_ {ii} $随着CR含量的函数而减小。 Fe-Fe和Fe-Cr Sia哑铃比Cr-Cr哑铃更偶然。 SIA缺陷的弹性偶极张量的波动主要与哑铃的可变晶体学取向有关。张量的统计属性$ \ boldsymbol {p} $和$ \boldsymbolΩ$使用其主要不变性分析,这表明在包含以下10 \%以上的合金中,点缺陷在AT和以上的合金中有很大差异。 Cr。空缺的放松体积取决于它是占据Fe还是Cr晶格部位的敏感性。在这项研究中发现的弹性弛豫量与缺陷的磁矩之间的相关性表明,磁性是影响Fe-Cr合金中缺陷弹性场的重要因素。
Point defects in body-centred cubic Fe, Cr and concentrated random magnetic Fe-Cr are investigated using density functional theory and theory of elasticity. The volume of a substitutional Cr atom in ferromagnetic bcc Fe is approximately 18\% larger than the volume of a host Fe atom, whereas the volume of a substitutional Fe atom in antiferromagnetic bcc Cr is 5\% smaller than the volume of a host Cr atom. Elastic dipole $\boldsymbol{P}$ and relaxation volume $\boldsymbolΩ$ tensors of vacancies and self-interstitial atom (SIA) defects exhibit large fluctuations, with vacancies having negative and SIA large positive relaxation volumes. Dipole tensors of vacancies are nearly isotropic across the entire alloy composition range, with diagonal elements $P_{ii}$ decreasing as a function of Cr content. Fe-Fe and Fe-Cr SIA dumbbells are more anisotropic than Cr-Cr dumbbells. Fluctuations of elastic dipole tensors of SIA defects are primarily associated with the variable crystallographic orientations of the dumbbells. Statistical properties of tensors $\boldsymbol{P}$ and $\boldsymbolΩ$ are analysed using their principal invariants, suggesting that point defects differ significantly in alloys containing below and above 10\% at. Cr. The relaxation volume of a vacancy depends sensitively on whether it occupies a Fe or a Cr lattice site. A correlation between elastic relaxation volumes and magnetic moments of defects found in this study suggests that magnetism is a significant factor influencing elastic fields of defects in Fe-Cr alloys.