Zhang Xuan, Wan Yuxuan, Chen Cuifan, Zhang Liang
International Joint Laboratory for Light Alloys (MOE), College of Materials Science and Engineering, Chongqing University, Chongqing 400044, China.
State Key Laboratory of Mechanical Transmission for Advanced Equipment, Chongqing University, Chongqing 400044, China.
Nanomaterials (Basel). 2024 Nov 11;14(22):1803. doi: 10.3390/nano14221803.
The segregation of solute atoms at grain boundary (GB) has an important effect on the GB characteristics and the properties of materials. The study of multielement co-segregation in GBs is still in progress and deserves further research at the atomic scale. In this work, first-principles calculations were carried out to investigate the effect of Mg and Cu co-segregation on the energetic and mechanical properties of the Al Σ5(210) GB. The segregation tendency of Mg at the GB in the presence of Cu is characterized, indicating a preference for substitutional segregation far away from Cu atoms. Cu segregation can facilitate the segregation of Mg due to their mutual attractive energy. The GB energy results show that Mg and Cu co-segregation significantly decreases GB energy and thus enhances the stability of the Al Σ5(210) GB. First-principles tensile test calculations indicate that Cu effectively counteracts the weakening effect of Mg segregation in the GB, particularly with the high concentration of Cu segregation. The phenomenon of Cu compensating the strength of the GB is attributed to an increase of charge density and the formation of newly formed Cu-Al bonds. Conversely, Mg segregation weakens the strengthening effect of Cu on the GB, but it can increase the strength of the GB when high concentrations of Cu atoms are present in the GB. The ICOHP and Bader charge analysis exhibits that the strengthening effect of Mg is attributed to charge transfer with surrounding Al and Cu, which enhances the Cu-Al and Al-Al bonds. The results provide a further understanding of the interplay between co-segregated elements and its influence on the energetic and mechanical properties of grain boundary.
溶质原子在晶界处的偏聚对晶界特性和材料性能有重要影响。晶界中多元素共偏聚的研究仍在进行中,值得在原子尺度上进一步研究。在这项工作中,进行了第一性原理计算,以研究Mg和Cu共偏聚对Al Σ5(210)晶界的能量和力学性能的影响。表征了在有Cu存在的情况下Mg在晶界处的偏聚倾向,表明其倾向于远离Cu原子进行取代偏聚。由于它们之间的相互吸引能,Cu偏聚可以促进Mg的偏聚。晶界能结果表明,Mg和Cu共偏聚显著降低了晶界能,从而提高了Al Σ5(210)晶界的稳定性。第一性原理拉伸试验计算表明,Cu有效地抵消了Mg偏聚对晶界的弱化作用,特别是在高浓度Cu偏聚的情况下。Cu补偿晶界强度的现象归因于电荷密度的增加和新形成的Cu-Al键的形成。相反,Mg偏聚削弱了Cu对晶界的强化作用,但当晶界中存在高浓度的Cu原子时,它可以提高晶界的强度。ICOHP和Bader电荷分析表明,Mg的强化作用归因于与周围Al和Cu的电荷转移,这增强了Cu-Al和Al-Al键。这些结果进一步加深了对共偏聚元素之间相互作用及其对晶界能量和力学性能影响的理解。