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基于量子力学指导的 Co43Fe20Ta(5.5)X(31.5) (X=B, Si, P, S) 金属玻璃设计。

Quantum mechanically guided design of Co43Fe20Ta(5.5)X(31.5) (X=B, Si, P, S) metallic glasses.

机构信息

Materials Chemistry, RWTH Aachen University, D-52056 Aachen, Germany.

出版信息

J Phys Condens Matter. 2012 May 2;24(17):175402. doi: 10.1088/0953-8984/24/17/175402. Epub 2012 Apr 3.

DOI:10.1088/0953-8984/24/17/175402
PMID:22469705
Abstract

A systematic ab initio molecular dynamics study was carried out to identify valence electron concentration and size induced changes on structure, elastic and magnetic properties for Co(43)Fe(20)Ta(5.5)X(31.5) (X=B, Si, P, S). Short range order, charge transfer and the bonding nature are analyzed by means of density of states, Bader decomposition and pair distribution function analysis. A clear trend of a decrease in density and bulk modulus as well as a weaker cohesion was observed as the valence electron concentration is increased by replacing B with Si and further with P and S. These changes may be understood based on increased interatomic distances, variations in coordination numbers and the electronic structure changes; as the valence electron concentration of X is increased the X bonding becomes more ionic, which disrupts the overall metallic interactions, leading to lower cohesion and stiffness. The highest magnetic moments for the transition metals are identified for X=S, despite the fact that the presence of X generally reduces the magnetic moment of Co. Furthermore, this study reveals an extended diagonal relationship between B and P within these amorphous alloys. Based on quantum mechanical data we identify composition induced changes in short range order, charge transfer and bonding nature and link them to density, elasticity and magnetism. The interplay between transition metal d band filling and s-d hybridization was identified to be a key materials design criterion.

摘要

采用从头算分子动力学方法系统研究了 Co(43)Fe(20)Ta(5.5)X(31.5)(X=B、Si、P、S)的价电子浓度和尺寸诱导结构、弹性和磁性能的变化。通过态密度、Bader 分解和配分函数分析研究了短程有序、电荷转移和键合性质。随着用 Si 取代 B,并进一步用 P 和 S 取代,观察到密度和体弹性模量降低以及结合力减弱的明显趋势。这些变化可以根据原子间距离的增加、配位数的变化和电子结构的变化来理解;随着 X 的价电子浓度的增加,X 键合变得更具离子性,这破坏了整体金属相互作用,导致结合力和刚度降低。对于过渡金属,X=S 具有最高的磁矩,尽管 X 的存在通常会降低 Co 的磁矩。此外,这项研究揭示了这些非晶合金中 B 和 P 之间的扩展对角线关系。基于量子力学数据,我们确定了短程有序、电荷转移和键合性质的组成诱导变化,并将其与密度、弹性和磁性联系起来。确定了过渡金属 d 带填充和 s-d 杂化之间的相互作用是关键的材料设计标准。

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