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First-principles study of noble gas atoms in bcc Fe

机译:BCC Fe中贵族气体原子的第一原理研究

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We investigate the energetics and clustering trend of noble gas atoms (He, Ne, and Ar) in bcc Fe, and their interactions with vacancy or H/He impurities using first-principles calculations. We determine the formation energy of single and double noble gas atoms inside Fe host lattice as well as the resulted volume changes. The Ne/Ar formation energy is two and three times that of He. The attraction between Ne/Ar and vacancy is stronger than He-vacancy, indicating higher dissolution energy of Ne/Ar. The interstitial Ne-Ne/Ar-Ar pairs have stronger attractions (-1.91 eV/-1.40 eV) than He-He (-037 eV), forming stable <110> configurations. Such strong attraction means that He/Ne/Ar tend to aggregate, which can be well explained by the lower electron density induced by interstitial noble gas atoms and its strong repulsion with Fe atoms. Moreover, H/He energetically prefers to occupy the tetrahedral sites nearby Ne/Ar atom. The attraction energies of He-Ne/He-Ar pairs (-1.01 eV/-0.85 eV) are much stronger than those of H-Ne/H-Ar (-0.22 eV/-0.10 eV) and their charge density differences are discussed. The distinct attraction strengths by various noble gas atoms provide a preliminary explanation for the difference in irradiation effects on Fe solid by He, Ne, Ar, and He+H/Ne+He. These findings improve our understanding about the behavior of noble gas atoms and gas bubble formation in iron under irradiation. (C) 2017 Elsevier B.V. All rights reserved.
机译:我们研究了BCC Fe中高贵气体原子(He,Ne和Ar)的能量和聚类趋势,以及使用一致原理计算的与空位或H / HE杂质的相互作用。我们确定Fe主机晶格内单个和双惰性气体原子的形成能量以及产生的体积变化。 NE / AR形成能量是他的两个和三倍。 Ne / Ar与空位之间的吸引力比他空位更强大,表明NE / AR的溶解能量较高。卧间Ne-Ne / Ar-Ar对具有更强的景点(-1.91eV / -1.40eV),而不是HE-HE(-037eV),形成稳定的<110>配置。这种强大的吸引力意味着他/ NE / AR倾向于聚集,这可以通过间质惰性气体原子诱导的较低的电子密度和与Fe原子的强烈排斥来良好解释。此外,H / HE大力地更喜欢占据NE / AR原子附近的四面体网站。 HE-NE / HE-AR对的吸引能量(-1.01eV / -0.85eV)比H-NE / H-AR(-0.22eV / -0.10ev)强大强大,并且讨论了它们的充电密度差异。各种惰性气体原子的明显吸引力为他,NE,AR和HE + H / NE +他提供了对Fe固体的辐照效应差异的初步解释。这些发现改善了对辐照下铁中贵气体和气泡形成的行为的理解。 (c)2017年Elsevier B.V.保留所有权利。

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