Hydrogenation induced surface bulging at the phase interfaces in AB-type hydrogen storage alloys

IF 8.7 Q1 CHEMISTRY, PHYSICAL
Applied Surface Science Advances Pub Date : 2026-03-01 Epub Date: 2026-02-12 DOI:10.1016/j.apsadv.2026.100951
Sumin Lee , Jin Hyeong Choi , Kyubin Hwang , Jinyoung You , Changhyo Sun , Taejun Ha , Jae-Hyeok Shim , Hye Jung Chang , Yunseok Kim
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Abstract

Excess hydrogen typically causes bulging and subsequent cracking in metals and alloys, leading to what is commonly recognized as hydrogen damage in conventional metals and alloys. However, similar hydrogen-induced degradation can play a beneficial role in hydrogen storage alloys. Despite the well-established understanding of bulging and cracking in conventional metals, their mechanistic origin in multiphase hydrogen storage alloys remains poorly understood. In this study, we reveal that hydrogen-induced bulging, followed by crack and crater formation, is associated with volume expansion at phase boundaries of a Ce-containing TiFe alloy. Initially, the secondary phase Ce particles exist as CeO2. As hydrogenation progresses, some transform into CeH2, causing bulging due to local volume expansion. Further hydrogenation leads to crack formation at the phase boundary, and once CeH2 dominates, the affected area rises and detaches, forming a crater. These observations address a critical gap in understanding the early-stage hydrogenation behavior of multiphase hydrogen storage alloys by directly revealing how hydrogen-driven phase transformations occur within rare-earth-containing secondary phases. Understanding the underlying mechanism of these sequential processes could not only facilitate the design of improved hydrogen storage materials but also provide valuable insights into hydrogen damage in conventional metals and alloys.
氢化诱导ab型贮氢合金相界面表面胀形
过量的氢通常会导致金属和合金的膨胀和随后的开裂,导致传统金属和合金的氢损伤。然而,类似的氢诱导降解可以在储氢合金中发挥有益的作用。尽管人们对传统金属中的胀形和开裂已经有了很好的认识,但对多相储氢合金中胀形和开裂的机理仍然知之甚少。在这项研究中,我们揭示了氢致胀形,然后是裂纹和陨石坑的形成,与含ce的TiFe合金相界处的体积膨胀有关。初始阶段,次级相Ce粒子以CeO2的形式存在。随着加氢过程的进行,部分转化为CeH2,局部体积膨胀导致胀形。进一步的加氢作用会在相界处形成裂纹,一旦CeH2占主导地位,受影响的区域就会上升并分离,形成陨石坑。这些观察结果通过直接揭示氢驱动的相变是如何在含稀土的二次相中发生的,解决了理解多相储氢合金早期加氢行为的关键空白。了解这些连续过程的潜在机制不仅可以促进改进储氢材料的设计,还可以为传统金属和合金中的氢损伤提供有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.10
自引率
1.60%
发文量
128
审稿时长
66 days
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