Hydrogen Embrittlement as a Conspicuous Material Challenge─Comprehensive Review and Future Directions

IF 51.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chemical Reviews Pub Date : 2024-05-09 DOI:10.1021/acs.chemrev.3c00624
Haiyang Yu*, Andrés Díaz, Xu Lu, Binhan Sun, Yu Ding, Motomichi Koyama, Jianying He, Xiao Zhou, Abdelali Oudriss, Xavier Feaugas and Zhiliang Zhang*, 
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Abstract

Hydrogen is considered a clean and efficient energy carrier crucial for shaping the net-zero future. Large-scale production, transportation, storage, and use of green hydrogen are expected to be undertaken in the coming decades. As the smallest element in the universe, however, hydrogen can adsorb on, diffuse into, and interact with many metallic materials, degrading their mechanical properties. This multifaceted phenomenon is generically categorized as hydrogen embrittlement (HE). HE is one of the most complex material problems that arises as an outcome of the intricate interplay across specific spatial and temporal scales between the mechanical driving force and the material resistance fingerprinted by the microstructures and subsequently weakened by the presence of hydrogen. Based on recent developments in the field as well as our collective understanding, this Review is devoted to treating HE as a whole and providing a constructive and systematic discussion on hydrogen entry, diffusion, trapping, hydrogen–microstructure interaction mechanisms, and consequences of HE in steels, nickel alloys, and aluminum alloys used for energy transport and storage. HE in emerging material systems, such as high entropy alloys and additively manufactured materials, is also discussed. Priority has been particularly given to these less understood aspects. Combining perspectives of materials chemistry, materials science, mechanics, and artificial intelligence, this Review aspires to present a comprehensive and impartial viewpoint on the existing knowledge and conclude with our forecasts of various paths forward meant to fuel the exploration of future research regarding hydrogen-induced material challenges.

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氢脆是材料面临的突出挑战--全面回顾与未来方向
氢被认为是一种清洁、高效的能源载体,对于打造净零未来至关重要。预计在未来几十年内,将大规模生产、运输、储存和使用绿色氢气。然而,作为宇宙中最小的元素,氢可以吸附在许多金属材料上、扩散到金属材料中并与金属材料相互作用,从而降低它们的机械性能。这种多方面的现象一般被归类为氢脆(HE)。氢脆是最复杂的材料问题之一,它是机械驱动力与微结构所显示的材料阻力之间在特定空间和时间尺度上错综复杂的相互作用的结果,随后又因氢的存在而减弱。基于该领域的最新发展以及我们的集体认识,本综述致力于将氢气作为一个整体来处理,并就氢气的进入、扩散、捕获、氢气与微结构的相互作用机制以及氢气在用于能量传输和存储的钢、镍合金和铝合金中的后果进行建设性的系统讨论。此外,还讨论了高熵合金和增材制造材料等新兴材料系统中的氢。这些鲜为人知的方面尤其受到重视。本综述结合了材料化学、材料科学、力学和人工智能的视角,旨在对现有知识提出全面而公正的观点,并在最后预测了各种前进道路,以推动未来有关氢致材料挑战的研究探索。
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来源期刊
Chemical Reviews
Chemical Reviews 化学-化学综合
CiteScore
106.00
自引率
1.10%
发文量
278
审稿时长
4.3 months
期刊介绍: Chemical Reviews is a highly regarded and highest-ranked journal covering the general topic of chemistry. Its mission is to provide comprehensive, authoritative, critical, and readable reviews of important recent research in organic, inorganic, physical, analytical, theoretical, and biological chemistry. Since 1985, Chemical Reviews has also published periodic thematic issues that focus on a single theme or direction of emerging research.
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