材料科学
合金
冶金
氢
腐蚀
氧化物
氢脆
脆化
应变率
有机化学
化学
作者
Hong Luo,Seok Su Sohn,Wenjun Lu,Linlin Li,Xiaogang Li,Chandrahaasan K. Soundararajan,Waldemar Krieger,Zhiming Li,Dierk Raabe
标识
DOI:10.1038/s41467-020-16791-8
摘要
Abstract Strong and ductile materials that have high resistance to corrosion and hydrogen embrittlement are rare and yet essential for realizing safety-critical energy infrastructures, hydrogen-based industries, and transportation solutions. Here we report how we reconcile these constraints in the form of a strong and ductile CoNiV medium-entropy alloy with face-centered cubic structure. It shows high resistance to hydrogen embrittlement at ambient temperature at a strain rate of 10 −4 s −1 , due to its low hydrogen diffusivity and the deformation twinning that impedes crack propagation. Moreover, a dense oxide film formed on the alloy’s surface reduces the hydrogen uptake rate, and provides high corrosion resistance in dilute sulfuric acid with a corrosion current density below 7 μA cm −2 . The combination of load carrying capacity and resistance to harsh environmental conditions may qualify this multi-component alloy as a potential candidate material for sustainable and safe infrastructures and devices.
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