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Solute-vacancy binding in aluminum

机译:铝中的溶质空位结合

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Previous efforts to understand solute-vacancy binding in aluminum alloys have been hampered by a scarcity of reliable, quantitative experimental measurements. Here, we report a large database of solute-vacancy binding energies determined from first-principles density functional calculations. The calculated binding energies agree well with accurate measurements where available, and provide an accurate predictor of solute-vacancy binding in other systems. We find: (i) some common solutes in commercial Al alloys (e.g., Cu and Mg) possess either very weak (Cu), or even repulsive (Mg), binding energies. Hence, we assert that some previously reported large binding energies for these solutes are erroneous, (ii) Large binding energies are found for Sn, Cd and In, confirming the proposed mechanism for the reduced natural aging in Al-Cu alloys containing microalloying additions of these solutes. (iii) In addition, we predict that similar reduction in natural aging should occur with additions of Si, Ge and Au. (iv) Even larger binding energies are found for other solutes (e.g., Pb, Bi, Sr, Ba), but these solutes possess essentially no solubility in Al. (v) We have explored the physical effects controlling solute-vacancy binding in Al. We find that there is a strong correlation between binding energy and solute size, with larger solute atoms possessing a stronger binding with vacancies. (vi) Most transition-metal 3d solutes do not bind strongly with vacancies, and some are even energetically strongly repelled from vacancies, particularly for the early 3d solutes, Ti and V.
机译:以前了解铝合金中溶质空位结合的努力因缺乏可靠的定量实验测量而受到阻碍。在这里,我们报告了一个由第一性原理密度泛函计算确定的溶质空位结合能的大型数据库。计算出的结合能与可用的准确测量结果非常吻合,并提供了其他系统中溶质空位结合的准确预测因子。我们发现:(i)商业铝合金中的一些常见溶质(例如Cu和Mg)具有非常弱的(Cu)甚至排斥(Mg)结合能。因此,我们断言,以前报道的一些这些溶质的大结合能是错误的,(ii)发现Sn,Cd和In具有大结合能,证实了在含有这些溶质的微合金化添加物的Al-Cu合金中减少自然老化的机制。(iii)此外,我们预测,添加Si、Ge和Au后,自然老化也会发生类似的减少。(iv)其他溶质(如Pb、Bi、Sr、Ba)的结合能更大,但这些溶质在Al中基本上没有溶解度。我们发现结合能与溶质大小之间存在很强的相关性,溶质原子越大,越大,与空位的结合越强。(vi) 大多数过渡金属 3d 溶质与空位不牢固结合,有些甚至在能量上强烈排斥空位,特别是对于早期的 3d 溶质 Ti 和 V。

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