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Insight into structural stability and helium diffusion behavior of Fe-Cr alloys from first-principles

机译:从第一原理洞察Fe-Cr合金的结构稳定性和氦气扩散行为

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摘要

We have performed the first-principles method to study the structural stability and helium diffusion behavior of Fe-Cr alloys. The calculated bulk modulus of 284.935 GPa in the non-magnetic (NM) state is in good agreement with others. We have obtained solid evidence that the alloy structures meet the mechanical stability criteria and lattice dynamics conditions in the anti-ferromagnetism (AFM) and non-magnetic (NM) states. Compared with bulk gamma-Fe, a slightly larger Young's modulus indicates that the doping of Cr helps to enhance the stiffness of the material and the ability to resist the reversible deformation of shear stress, but the ductility decreased slightly. Our results revealed that the addition of interstitial He atom promotes the expansion and deformation of the lattice, and further enlarges the cell volume. The presence of Cr in the alloy structures promotes the migration of a single helium atom between octahedral interstitials, and at the same time, inhibits the diffusion of helium atoms between tetrahedral interstitials to a large extent, which seem to be trapped in tetrahedral interstitials and cannot escape. The electronic properties show that the alloy materials exhibit obvious metallicity, and the doping of Cr generates an impurity state at lower energy, which is mainly formed by the s, p of Fe and s, p shell electrons of Cr. The charge density difference graphs corroborate that there is bonding interactions between Fe and Cr atoms. Bader charge analysis shows that a stronger polar covalent bond is formed between Fe and Cr in the non-magnetic (NM) state than in the anti-ferromagnetism (AFM) state. Our results provide useful information for understanding the initial growth of helium bubbles in experiments.
机译:我们已经进行了第一原理方法来研究Fe-Cr合金的结构稳定性和氦气扩散行为。在非磁性(NM)状态下的计算出的体积为284.935 GPa与他人吻合良好。我们已经获得了合金结构符合抗铁磁(AFM)和非磁性(NM)状态的机械稳定性标准和晶格动力学条件的坚实证据。与散装γ-FE相比,略大的杨氏模量表明CR的掺杂有助于提高材料的刚度和抵抗剪切应力的可逆变形的能力,但延展性略微降低。我们的研究结果表明,口交HE原子的添加促进了晶格的膨胀和变形,并进一步扩大了细胞体积。合金结构中Cr的存在促进了八面体间质之间的单个氦原子的迁移,同时抑制了在很大程度上在很大程度上抑制了氦原子之间的扩散,这似乎被困在四面体间质上,不能捕获逃脱。电子特性表明,合金材料表现出明显的金属性,并且Cr的掺杂在较低能量下产生杂质状态,其主要由CR的Fe和S,P壳体的S,P壳体形成。电荷密度差异图证实了Fe和Cr原子之间存在粘合相互作用。较糟糕的电荷分析表明,在非磁性(NM)状态下的Fe和Cr之间形成更强的极性共价键,而不是抗铁磁性(AFM)状态。我们的结果提供了了解实验中氦气泡沫初始生长的有用信息。

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  • 来源
    《RSC Advances》 |2020年第6期|共16页
  • 作者单位

    Sichuan Univ Inst Atom &

    Mol Phys Chengdu 610065 Sichuan Peoples R China;

    Sichuan Univ Inst Atom &

    Mol Phys Chengdu 610065 Sichuan Peoples R China;

    Sci &

    Technol Surface Phys &

    Chem Lab Mianyang 621907 Sichuan Peoples R China;

    Chinese Acad Sci Inst High Energy Phys Beijing 100049 Peoples R China;

    Chinese Acad Sci Inst High Energy Phys Beijing 100049 Peoples R China;

    Sichuan Univ Inst Atom &

    Mol Phys Chengdu 610065 Sichuan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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