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February 22, 2026Materials0 citationsOpen Access

Effect of Cu2P2O7 on the Formation of Black Micro-Arc Oxidation Coating on AZ31 Magnesium Alloy

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JCJianzhong ChenHLHui LiBCBo Chen

Key Points

  • The research aims to create black micro-arc oxidation coatings using cupric pyrophosphate to improve aesthetic appeal for magnesium alloys.
  • Fabricated coatings using micro-arc oxidation technique with Cu2P2O7 in silicate-based electrolyte.
  • Varying Cu2P2O7 concentration from 0 to 5 g/L to assess color changes.
  • Conducted XPS and EDS analyses for compositional verification.
  • Performed microstructural analysis to evaluate coating thickness and porosity.
  • Conducted electrochemical tests to assess corrosion resistance.
  • Successfully developed uniform black coatings at 4–5 g/L Cu2P2O7 concentration.
  • XPS and EDS identified CuO as the primary coloring agent within the coating.
  • Microstructural analysis revealed enhanced compactness and reduced pore size at optimal Cu2P2O7 concentration.
  • Electrochemical tests showed an increased corrosion current density, indicating reduced corrosion resistance with the modified coating.

Abstract

Magnesium alloys require protective surface coatings for widespread application, with micro-arc oxidation (MAO) being a prominent technique. However, conventional MAO coatings are typically gray or light-colored, necessitating secondary treatments for specific colors like black, which complicates the process. This study aims to develop a one-step method for fabricating black MAO coatings on AZ31 magnesium alloy by introducing cupric pyrophosphate (Cu2P2O7) as a colorant into a silicate-based electrolyte. As the Cu2P2O7 concentration increased from 0 to 5 g/L, the coating color transitioned from grayish-white to pink, then brownish-black, achieving a uniform black appearance at 4–5 g/L. XPS and EDS analyses confirmed the incorporation of copper as CuO, identified as the primary coloring agent. XRD indicated that the phase composition remained MgO, MgSiO3, and Mg, although the MgO content decreased. Microstructural analysis showed that an optimal concentration of 4 g/L enhanced coating compactness by thickening the dense layer and reducing pore size. However, electrochemical tests revealed that the incorporation of CuO significantly increased the corrosion current density, thereby reducing the coating’s corrosion resistance compared to the unmodified coating. This work successfully demonstrates the one-step fabrication of black MAO coatings, elucidates the coloration mechanism involving CuO formation, and provides insights into the trade-off between aesthetic functionalization and corrosion performance.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/699a9d7a482488d673cd3624https://doi.org/10.3390/ma19040811
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