首页> 外文期刊>Computational Materials Science >First-principle investigation of electronic structures and interactions of foreign interstitial atoms (C, N, B, O) and intrinsic point defects in body- and face-centered cubic iron lattice: A comparative analysis
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First-principle investigation of electronic structures and interactions of foreign interstitial atoms (C, N, B, O) and intrinsic point defects in body- and face-centered cubic iron lattice: A comparative analysis

机译:身体和面为中心立方铁格子(C,N,B,O)和内在点缺陷的电子结构和异形缺陷的第一原理调查:对比分析

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摘要

Carbon, Nitrogen, Boron and Oxygen are common alloying elements in ferritic as well as in austenitic steels and their small concentration of only few parts per million significantly influence the materials mechanical properties. In this report, a detailed comparative analyses of electronic structures and interactions of foreign solute atoms (C, N, B, and O) with point defects (vacancy/interstitial) in bcc- and fcc-iron lattices as obtained from density functional theory calculations are presented. It is found that the energetically favourable configurational site for B atom is the substitutional site in bcc-Fe whereas it is the octahedral interstitial site in fcc-Fe. For all other solute (C, N, O) atoms octahedral interstitial position is energetically favourable in both Fe lattices. The stability of all solute atoms is discussed from view point of their chemical nature as well as geometrical factor. In addition, the interaction of B atom with the point defects in the two Fe-lattices is found to be quite different as compared to any other solute atoms. We found that B atom strongly binds the point defects in bcc-Fe, in contrast, repels in fcc-Fe lattice. Furthermore, strong resemblance is observed between B atom and vacancy regarding their nature of interaction with other point defects in bcc-Fe lattice. Although vacancy always exhibit strong attraction with solute atoms in both Fe-lattices, the trapping ability of the vacancy in bcc-Fe is found to be stronger than that in fcc-Fe. The interaction among V-SA(m) cluster is also calculated for m upto 5 in order to investigate the trapping ability of a vacancy and covalent bond formation is observed in case of C atoms only in bcc-Fe lattice. Further insights into electronic structure and interaction of the point defects in the two Fe lattices have been obtained from density of states and differential charge density calculations.
机译:碳,氮气,硼和氧是铁素体中的常见合金元素以及奥氏体钢中的常见合金元素,其小浓度仅为百万份的少数部分显着影响材料机械性能。在本报告中,从密度泛函理论计算中获得的BCC和FCC-铁格子中具有点缺陷(空位/间质/间质)的电子结构和外来溶质原子(C,N,B和O)的电子结构和相互作用的详细比较分析呈现。结果发现,B原子的高力良好的配置现场是BCC-FE的替代部位,而FCC-FE是八面体间隙位点。对于所有其他溶质(c,n,o)原子原子八半间隙位置在Fe格子中能够充满活力。从化学性质的观点以及几何因素讨论了所有溶质原子的稳定性。另外,与任何其他溶质原子相比,发现B原子与两种Fe-rate的点缺陷的相互作用相当不同。我们发现B原子强烈地绑定了BCC-Fe中的点缺陷,相反,在FCC-FE格中排斥。此外,在B原子之间观察到强烈的相似性,并且在BCC-Fe格子中与其他点缺陷的相互作用性质的性质之间观察到的。虽然空位总是在Fe-raterices中具有溶质原子的强大吸引力,但发现BCC-Fe中空位的捕获能力比FCC-Fe更强。对于M UPTO 5,也计算V-SA(M)簇之间的相互作用,以研究仅在BCC-FE格管中的C原子的情况下观察到空位的捕获能力和共价键形成。从状态和差分充电密度计算的密度获得了两种FE格子中的电子结构和点缺陷的电子结构的进一步见解。

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