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December 10, 2025Nature Communications8 citationsOpen Access

Protection of metal interfaces against hydrogen-assisted cracking

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GHGuillaume HachetCentre National de la Recherche ScientifiqueSWShaolou WeiMax-Planck-Institut für Nachhaltige MaterialienATAli TehranchiFederal Institute For Materials Research and Testing

Key Points

  • To investigate methods for protecting materials from hydrogen embrittlement via interstitial solutes.
  • Utilized ab initio calculations to assess hydrogen segregation at crystal defects
  • Tested boron and carbon solid solutions at grain boundaries in martensitic steel
  • Evaluated the impact of these interstitial elements on hydrogen ingress.
  • Boron and carbon significantly reduced hydrogen ingress by half
  • Doping with these elements improved resistance to hydrogen embrittlement
  • Findings suggest a broader application for various metallic materials.

Abstract

Abstract Enabling a hydrogen economy requires the development of materials resistant to hydrogen embrittlement (HE). More than 100 years of research have led to several mechanisms and models describing how hydrogen interacts with lattice defects and leads to mechanical property degradation. However, solutions to protect materials from hydrogen are still scarce. Here, we investigate the role of interstitial solutes in protecting critical crystalline defects sensitive to hydrogen. Ab initio calculations show that boron and carbon in solid solutions at grain boundaries can efficiently prevent hydrogen segregation. We then realized this interface protection concept on martensitic steel, a material strongly prone to HE, by doping the most sensitive interfaces with different concentrations of boron and carbon. These segregations, in addition to stress relaxations, critically reduce the hydrogen ingress by half, leading to an unprecedented resistance against HE. This tailored interstitial segregation strategy can be extended to other metallic materials susceptible to hydrogen-induced interfacial failure.

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Cite This Study

Hachet et al. (2025) studied this question.

synapsesocial.com/papers/69401b312d562116f28f7b78https://doi.org/10.1038/s41467-025-67310-6
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