School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, People's Republic of China.
J Phys Condens Matter. 2011 Jan 12;23(1):015501. doi: 10.1088/0953-8984/23/1/015501. Epub 2010 Dec 6.
Using ab initio density functional theory calculations, we have investigated the influence of Mo, V and Pd on the H-induced grain boundary embrittlement in Fe. We find that, in the high impurity concentration systems, all of the three alloying elements facilitate H embrittlement at the Σ3 (111) [Formula: see text] grain boundary in Fe. The calculated binary effects of the H-X (X = Mo, V, Pd) couples are 0.063, 0.074 and 0.040 eV, respectively. On the other hand, in the large unit cell with low impurity concentration, both Mo and V can facilitate H embrittlement, and the binary effects of pairs are 0.152 and 0.164 eV, respectively. While Pd reduces the H embrittlement on the cohesion of the Fe grain boundary with the binary effect of - 0.1 eV. The H-X (X = Mo, V, Pd) interactions are interpreted by electronic structure analyses.
使用从头算密度泛函理论计算,我们研究了 Mo、V 和 Pd 对 Fe 中 H 诱导晶界脆化的影响。我们发现,在高杂质浓度体系中,三种合金元素都有利于 Fe 中 Σ3(111)[Formula: see text]晶界的 H 脆化。计算得到的 H-X(X=Mo、V、Pd)偶对的二元效应分别为 0.063、0.074 和 0.040 eV。另一方面,在低杂质浓度的大单元胞中,Mo 和 V 都可以促进 H 脆化,对 H 脆化的二元效应分别为 0.152 和 0.164 eV。而 Pd 降低了 Fe 晶粒边界结合能的 H 脆化作用,二元效应为-0.1 eV。通过电子结构分析解释了 H-X(X=Mo、V、Pd)相互作用。