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January 18, 2026Nanomaterials0 citationsOpen Access

Mechanism of Long-Term Corrosion Protection for Silicone Epoxy Coatings Reinforced by BN-PDA-CeO2 Ternary Composites in Harsh Environments

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XMXianlian MuTJTao JinPXPengfei Xie

Key Points

  • The aim is to enhance the corrosion protection of silicone epoxy coatings using BN-PDA-CeO2 composites.
  • Synthesize BN-PDA-CeO2 composites via in situ growth on hexagonal boron nitride mediated by polydopamine.
  • Incorporate the composites into silicone epoxy coatings.
  • Conduct electrochemical tests to evaluate corrosion inhibition efficiency.
  • Use Fourier transform infrared spectroscopy, X-ray diffraction, and transmission electron microscopy for characterization.
  • Corrosion inhibition efficiency for 2024 aluminum alloy reached 99.96%.
  • Coating resistance reached 8.5 × 10^9 Ω·cm2 after immersion in NaCl solution.
  • Charge transfer resistance reached 1.2 × 10^10 Ω·cm2, significantly higher than pure SE coatings.
  • Density functional theory calculations indicated effective synergistic mechanisms.

Abstract

Corrosion in harsh environments causes global economic losses exceeding 3 trillion US dollars annually. Traditional silicone epoxy (SE) coatings are prone to failure due to insufficient physical barrier properties and lack of active protection. In this study, cerium dioxide (CeO2) was in situ grown on the surface of hexagonal boron nitride (h-BN) mediated by polydopamine (PDA) to prepare BN-PDA-CeO2 ternary nanocomposites, which were then incorporated into SE coatings to construct a multi-scale synergistic corrosion protection system. Fourier transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD), and transmission electron microscopy (TEM) confirmed the successful preparation of the composites, where PDA inhibited the agglomeration of h-BN and CeO2 was uniformly loaded. Electrochemical tests showed that the corrosion inhibition efficiency of the extract of this composite for 2024 aluminum alloy reached 99.96%. After immersing the composite coating in 3.5 wt% NaCl solution for 120 days, the coating resistance (Rc) and charge transfer resistance (Rct) reached 8.5 × 109 Ω·cm2 and 1.2 × 1010 Ω·cm2, respectively, which were much higher than those of pure SE coatings and coatings filled with single/binary fillers. Density functional theory (DFT) calculations revealed the synergistic mechanisms: PDA enhanced interfacial dispersion (adsorption energy of −0.58 eV), CeO2 captured Cl− (adsorption energy of −4.22 eV), and Ce3+ formed a passive film. This study provides key technical and theoretical support for the design of long-term corrosion protection coatings in harsh environments such as marine and petrochemical industries.

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Cite This Study

Mu et al. (2026) studied this question.

synapsesocial.com/papers/696c7877eb60fb80d1396ac9https://doi.org/10.3390/nano16020121
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