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Theoretical study of synergistic effect of P and Mg on the cohesive properties of Ni3Al grain boundaries AITranslate

Shenyang Normal University;Institute of Metal Research; Xiamen University of Technology; Shenyang Normal University; Shenyang Normal University; Shenyang Normal University
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Publisher: Elsevier
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Abstract AITranslate

Highlights • P tends to stay at the interstitial sites while Mg will substitute the host atoms at the Ni-rich Σ5 (2 1 0) Ni3Al GBs. • Synergistic segregation of Mg can improve the detrimental effect of P in the mixed hole on the cohesion properties of the Ni-rich GBs. • The site occupation of Mg can be reversed from the Ni site to the Al site by synergistic alloying of P at the stoichiometric Σ5 (2 1 0) Ni3Al GBs. • GB strengthening of alloying elements can be attributed to the strong P/Mg-Ni interactions across the GBs. The addition of specific alloying elements can effectively control the microstructure of alloys, so as to improve the cohesive properties of the GBs. In this work, the first-principles plane-wave pseudopotential method is used to investigate the segregation behavior of P and Mg doping at the Ni3Al GBs and reveal the physical mechanism. Different 100%Ni Σ5 (2 1 0) [0 1 0] GB systems with and without doping elements are relaxed and larger volume expansions are obtained. The calculated segregation energies show that P or Mg atoms tend to segregate to the GBs relative to the bulk. P atoms tend to stay at the interstitial sites surrounded by 8 Ni atoms in the pure Ni holes of the GBs while Mg atoms tend to substitute Ni atoms. The segregation of P or Mg to the GBs leads to an increase of the Griffith work at the GBs, indicating that the segregation can improve the bonding properties of the GBs. Especially, the synergistic segregation of Mg can improve the detrimental effect of P in the mixed hole on the cohesive properties of the GBs. It is also found that the site occupation of Mg can be reversed from the Ni site to the Al site by the synergistic alloying of P at the 50%Ni Σ5 GBs. P and Mg tend to bond with the host atom Ni regardless of GB structure. The investigation of electronic structure shows that GB strengthening of alloying elements is attributed to the increasing P/Mg-Ni interactions across the GBs. Graphical abstract Download : Download high-res image (80KB) Download : Download full-size image

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DOI:https://doi.org/10.1016/j.commatsci.2024.112891

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Highlights • P tends to stay at the interstitial sites while Mg will substitute the host atoms at the Ni-rich Σ5 (2 1 0) Ni3Al GBs. • Synergistic segregation of Mg can improve the detrimental effect of P in the mixed hole on the cohesion properties of the Ni-rich GBs. • The site occupation of Mg can be reversed from the Ni site to the Al site by synergistic alloying of P at the stoichiometric Σ5 (2 1 0) Ni3Al GBs. • GB strengthening of alloying elements can be attributed to the strong P/Mg-Ni interactions across the GBs. The addition of specific alloying elements can effectively control the microstructure of alloys, so as to improve the cohesive properties of the GBs. In this work, the first-principles plane-wave pseudopotential method is used to investigate the segregation behavior of P and Mg doping at the Ni3Al GBs and reveal the physical mechanism. Different 100%Ni Σ5 (2 1 0) [0 1 0] GB systems with and without doping elements are relaxed and larger volume expansions are obtained. The calculated segregation energies show that P or Mg atoms tend to segregate to the GBs relative to the bulk. P atoms tend to stay at the interstitial sites surrounded by 8 Ni atoms in the pure Ni holes of the GBs while Mg atoms tend to substitute Ni atoms. The segregation of P or Mg to the GBs leads to an increase of the Griffith work at the GBs, indicating that the segregation can improve the bonding properties of the GBs. Especially, the synergistic segregation of Mg can improve the detrimental effect of P in the mixed hole on the cohesive properties of the GBs. It is also found that the site occupation of Mg can be reversed from the Ni site to the Al site by the synergistic alloying of P at the 50%Ni Σ5 GBs. P and Mg tend to bond with the host atom Ni regardless of GB structure. The investigation of electronic structure shows that GB strengthening of alloying elements is attributed to the increasing P/Mg-Ni interactions across the GBs. Graphical abstract Download : Download high-res image (80KB) Download : Download full-size image

quote

GB/T 7714-2015 [1] Yajuan Liu, Jieshan Hou, Chunhai Jiang, et al. Computational Materials Science, 2024(237). DOI:10.1016/j.commatsci.2024.112891.
MLA [1] Yajuan Liu, et al., Computational Materials Science, no. 237, 2024, https://doi.org/10.1016/j.commatsci.2024.112891.
APA [1] Yajuan Liu, Jieshan Hou, Chunhai Jiang, Chunmei Li, Tianfu Gao, & Renzhong Huang. (2024). Computational Materials Science(237). https://doi.org/10.1016/j.commatsci.2024.112891
IEEE [1] Yajuan Liu, Jieshan Hou, Chunhai Jiang, Chunmei Li, Tianfu Gao, and Renzhong Huang, Computational Materials Science, no. 237, 2024, doi: 10.1016/j.commatsci.2024.112891.