Reaction-sequence-regulated Y2O3/t-ZrO2 coherent interfaces enable Y diffusion and YSTZ toughening in ceramic coatings on AZ91D magnesium alloy

As a prototypical structural metallic material, AZ91D magnesium alloy is widely used in aerospace and automotive applications due to its low density and high specific strength, but its poor surface durability remains a critical limitation. To enhance service reliability, ceramic coatings have been developed as protective barriers. In ZrO 2 -doped plasma electrolytic oxidation (PEO) coatings, a key challenge is the inefficient stabilization of yttria-stabilized tetragonal zirconia (YSTZ), caused by severely hindered Y 3+ interfacial transport under non-equilibrium discharge conditions. The rapid and competitive formation of Y 2 O 3 and ZrO 2 generates structurally disordered or weakly coherent interfaces, increasing the diffusion barrier for Y 3+ migration and suppressing t-ZrO 2 stabilization, thereby degrading fracture toughness. To address this issue, a reaction-sequence-regulated PEO strategy combined with machine learning was developed to construct a low-interfacial-energy Y 2 O 3 /t-ZrO 2 coherent interface, converting it from a diffusion barrier into a transport pathway. First-principles calculations reveal a reduced Y 3+ migration barrier of 0.566 eV (9.87% lower than conventional PEO). Optimization shows that interface continuity and strain homogeneity are highly sensitive to Y concentration, where both deficiency and excess suppress diffusion. The optimized coating achieves 74% YSTZ with significantly improved fracture toughness while maintaining high hardness. This work establishes a mechanistic link among reaction control, coherent interfaces, strain-regulated diffusion, and macroscopic performance, providing a general strategy for toughened ceramic coatings.

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Publication Details

Journal
Journal of Magnesium and Alloys
Published
2026-08-24
DOI
https://doi.org/10.1016/j.jma.2026.102260
Primary Topic
Magnesium Alloys: Properties and Applications
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article
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Reaction-sequence-regulated Y2O3/t-ZrO2 coherent interfaces enable Y diffusion and YSTZ toughening in ceramic coatings on AZ91D magnesium alloy

Haifei Zhan, Yongnan Chen, Shuaikang Li, Weifeng Qian et al.
Journal of Magnesium and Alloys
Magnesium Alloys: Properties and Applications
article

Reaction-sequence-regulated Y2O3/t-ZrO2 coherent interfaces enable Y diffusion and YSTZ toughening in ceramic coatings on AZ91D magnesium alloy

Haifei Zhan, Yongnan Chen, Shuaikang Li, Weifeng Qian, Shuang Wang, Bingkun Ning, Qinyang Zhao, Zhen Zhang, Nan Wang, Haotian Bao
article en

Abstract

As a prototypical structural metallic material, AZ91D magnesium alloy is widely used in aerospace and automotive applications due to its low density and high specific strength, but its poor surface durability remains a critical limitation. To enhance service reliability, ceramic coatings have been developed as protective barriers. In ZrO 2 -doped plasma electrolytic oxidation (PEO) coatings, a key challenge is the inefficient stabilization of yttria-stabilized tetragonal zirconia (YSTZ), caused by severely hindered Y 3+ interfacial transport under non-equilibrium discharge conditions. The rapid and competitive formation of Y 2 O 3 and ZrO 2 generates structurally disordered or weakly coherent interfaces, increasing the diffusion barrier for Y 3+ migration and suppressing t-ZrO 2 stabilization, thereby degrading fracture toughness. To address this issue, a reaction-sequence-regulated PEO strategy combined with machine learning was developed to construct a low-interfacial-energy Y 2 O 3 /t-ZrO 2 coherent interface, converting it from a diffusion barrier into a transport pathway. First-principles calculations reveal a reduced Y 3+ migration barrier of 0.566 eV (9.87% lower than conventional PEO). Optimization shows that interface continuity and strain homogeneity are highly sensitive to Y concentration, where both deficiency and excess suppress diffusion. The optimized coating achieves 74% YSTZ with significantly improved fracture toughness while maintaining high hardness. This work establishes a mechanistic link among reaction control, coherent interfaces, strain-regulated diffusion, and macroscopic performance, providing a general strategy for toughened ceramic coatings.

Journal of Magnesium and AlloysVol. 23
Queensland University of Technology (AU), Chang'an University (CN), Northwest Institute For Non-Ferrous Metal Research (CN), Zhejiang University (CN)
Openalex Percentile: Top 18%
Magnesium Alloys: Properties and Applications
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