Enhanced hydrogen embrittlement resistance of FeCoNiCrMn multi-principal element alloys via local chemical ordering and grain boundary segregation

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Xiao-Ye Zhou , Hong-Hui Wu , Meisa Zhou , Lifei Wang , Turab Lookman , Xinping Mao
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Abstract

Hydrogen embrittlement (HE), a persistent challenge for high-strength metallic materials, imposes severe limitations on their applications in hydrogen containing environments. Recent studies have revealed that FeCoNiCrMn multi-principal element alloys (MPEAs) exhibit exceptional HE resistance, offering transformative potential for next-generation structural materials. However, the atomic-scale mechanisms governing hydrogen-defect interactions in compositionally complex alloys remain elusive due to experimental limitations in tracking H atoms. To bridge this critical gap, we developed a deep-learning interatomic potential specifically tailored for FeCoNiCrMn-H systems, which enables large-scale molecular dynamics simulations that simultaneously resolve hydrogen migration, chemical ordering, and defect evolution at atomic resolution. The simulation results reveal a multi-mechanistic synergy driven by complex interactions between deformation twinning, local chemical ordered (LCO) structures, dislocations, and grain boundaries (GBs). Specifically, it is shown that H atoms can reduce stacking fault energy and thus promote deformation twinning. Meanwhile, LCO structures dynamically trap H atoms, forming LCOH complexes which exhibit a stronger dislocation pinning effect than the LCO structures alone. Moreover, Cr enrichment and Fe depletion at the GBs are found to increase GB fracture energy and reduce HE sensitivity. Collectively, these mechanisms contribute to the enhanced HE resistance of FeCoNiCrMn alloys. Our findings provide insights into the fundamental mechanisms underlying the exceptional HE resistance of FeCoNiCrMn alloys, and theoretical frameworks for designing MPEAs with superior mechanical properties to extend service life.

Abstract Image

通过局部化学有序和晶界偏析增强FeCoNiCrMn多主元素合金的抗氢脆性能
氢脆(HE)是高强度金属材料面临的一个持续挑战,严重限制了其在含氢环境中的应用。最近的研究表明,FeCoNiCrMn多主元素合金(mpea)具有出色的HE抗性,为下一代结构材料提供了变革潜力。然而,由于在跟踪H原子方面的实验限制,控制组成复杂合金中氢缺陷相互作用的原子尺度机制仍然难以捉摸。为了弥补这一关键的知识差距,我们开发了一个专门为FeCoNiCrMn-H系统量身定制的深度学习原子间势,它可以实现大规模的分子动力学模拟,同时在原子分辨率上解决氢迁移、化学有序和缺陷演化问题。模拟结果揭示了变形孪晶、局部化学有序结构(LCO)、位错和晶界(GBs)之间复杂的相互作用所驱动的多机制协同作用。具体而言,研究表明H原子可以降低层错能,从而促进变形孪晶。同时,LCO结构动态捕获H原子,形成LCO-H配合物,表现出比单独LCO结构更强的钉住效应。此外,发现在GB处富集Cr和缺铁增加了GB断裂能,降低了HE敏感性。总的来说,这些机制有助于增强FeCoNiCrMn合金的HE抗性。我们的研究结果揭示了FeCoNiCrMn合金具有优异的HE抗性的基本机制,并为设计具有优异机械性能以延长使用寿命的mpea提供了理论框架。
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来源期刊
Acta Materialia
Acta Materialia 工程技术-材料科学:综合
CiteScore
16.10
自引率
8.50%
发文量
801
审稿时长
53 days
期刊介绍: Acta Materialia serves as a platform for publishing full-length, original papers and commissioned overviews that contribute to a profound understanding of the correlation between the processing, structure, and properties of inorganic materials. The journal seeks papers with high impact potential or those that significantly propel the field forward. The scope includes the atomic and molecular arrangements, chemical and electronic structures, and microstructure of materials, focusing on their mechanical or functional behavior across all length scales, including nanostructures.
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