Influence of Y2O3/CeO2 on the microstructure and properties of AlCrFeNiCu high-entropy alloy coating
Xiaona Ren , Zhipei Chen , Qingzhi Yan , Peng Wang , Wenchang Wang , Yao Wang , Changchun Ge , Yong Zhang
International Journal of Minerals, Metallurgy, and Materials ›› 2026, Vol. 33 ›› Issue (4) : 1297 -1309.
Y2O3 and CeO2 nanoparticles were individually incorporated into an AlCrFeNiCu coating applied to the surface of a Zr-4 rod. The microstructure, hardness, high-temperature fretting wear behavior, corrosion resistance, and high-temperature oxidation resistance of the coatings were comprehensively evaluated. The results demonstrate that the addition of Y2O3 or CeO2 notably modified the solidification kinetics of the molten pool, affected elemental diffusion pathways, and effectively refined the grain structure, thus significantly improving the overall performance of the AlCrFeNiCu coating. Specifically, the hardness of the AlCrFeNiCu coatings doped with Y2O3 and CeO2 reached 8.61 and 8.72 GPa, respectively, with corresponding wear rate reductions of 41.3% and 38.0% compared to the undoped coating. In a 0.1 mol/L KOH solution, the self-corrosion current densities of both modified coatings decreased by one order of magnitude in comparison to the unmodified AlCrFeNiCu coating. The oxidation behavior of both coatings conformed to parabolic kinetics, and the coatings retained their structural integrity after being exposed to air at 1200°C for 90 min, whereas the undoped coating exhibited micro-cracks after 30 min of exposure.
high-entropy alloy / coating / rare-earth oxide / corrosion resistance / oxidation resistance
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University of Science and Technology Beijing
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