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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Chemical states of 3d transition metal impurities in a liquid lead-bismuth eutectic analyzed using first principles calculations
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Chemical states of 3d transition metal impurities in a liquid lead-bismuth eutectic analyzed using first principles calculations

机译:3D过渡金属杂质中的化学态在液体铅 - 铋中的共晶分析使用第一原理计算

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Steels are easily corroded in a liquid lead-bismuth eutectic (LBE) because their components, such as Fe, Cr and Ni, exhibit a high solubility in the liquid LBE. To understand the reason for such a high solubility of these 3d transition metals, we have performed first-principles molecular dynamics calculations and analyzed the pair-correlation functions, electronic densities of states, and Bader charges and volumes of the 3d transition metals dissolved in the liquid LBE as impurities. The calculations show that the 4s and 3d orbitals of the 3d impurity atoms largely interact with the 6p band of the LBE, which generates bonding orbitals. We suggest that the high stability of 3d metals in the liquid LBE is caused by the interactions of the 4s and 3d orbitals with the 6p band. Spin polarization is induced by V, Cr, Mn, Fe and Co impurity atoms in a similar manner to the Slater-Pauling curve of solid transition metals, which exhibits a downward shift in the atomic number by approximately two. Based on the degree of spin polarization and the shifted trend of the Slater-Pauling curve, we suggest that Ni exhibits a higher solubility than Cr and Fe because of the differences in their interaction strengths between their 3d orbitals and the 6p band. In addition, the 4s and 3d orbitals of the 3d impurity atoms were found to interact more favorably with the Bi 6p band than the Pb 6p band, which is consistent with the fact that liquid Bi is more corrosive to steels than is liquid Pb.
机译:钢在液体铅 - 铋的共晶(LBE)中容易被腐蚀,因为它们的组分如Fe,Cr和Ni,在液体LbE中表现出高溶解度。要了解这些3D过渡金属的这种高溶解度的原因,我们已经进行了第一原理分子动力学计算,并分析了对溶解的3D过渡金属的较糟糕的指控和较糟糕的电荷和体积的对相关函数液体lbe作为杂质。该计算表明,3D杂质原子的4S和3D轨道在很大程度上与LBE的6P条带相互作用,这产生粘合轨道。我们建议液体LBE中的3D金属的高稳定性是由4S和3D轨道与6P频段的相互作用引起的。通过与固体过渡金属的壁图曲线类似的V,Cr,Mn,Fe和Co杂质原子诱导自旋极化,其在固体过渡金属的壁图曲线上呈现出原子数的向下偏移大约两个。基于自旋极化的程度和斯莱特曲线的偏移趋势,我们认为Ni表现出比CR和Fe更高的溶解度,因为它们的3D轨道和6P频段之间的相互作用强度的差异。此外,发现3D杂质原子的4S和3D轨道与BI 6P频带比PB 6P带更有利地相互作用,这与液体BI更腐蚀于钢的事实是液体PB的。

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