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May 3, 2026Advanced Engineering Materials2 citations

Electrochemical Behavior of Flame‐Sprayed Sc‐Doped AlCoCrFeMo High‐Entropy Alloy Coatings in 3.5% Sodium Chloride Solution

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PKPankaj KumarAVAkash VyasMQMohammad Aatif Qazi

Key Points

  • This study aims to analyze the electrochemical behavior and corrosion resistance of Sc-doped high-entropy alloy coatings in saline environments.
  • Flame-spraying of scandium-doped high-entropy alloy coatings at varying Sc concentrations (0.1, 0.3, 0.5 wt%)
  • Exposure to 3.5 wt% sodium chloride solution at room temperature
  • Electrochemical analysis using open-circuit potential, potentiodynamic polarization curves, and electrochemical impedance spectroscopy.
  • HEA-Sc0.3 exhibited the highest corrosion potential and lowest corrosion current density compared to other coatings.
  • Corrosion rate reduction of approximately 37–74% for Sc-doped coatings relative to HEA-Base.
  • Distinct corrosion patterns were observed, with pitting in HEA-Base and stable oxide layers forming in Sc-doped coatings.

Abstract

This study presents the electrochemical behavior of flame‐sprayed scandium (Sc)‐doped high‐entropy alloy (HEA) coatings by varying Sc at 0.1, 0.3, and 0.5 wt% to AlCoCrFeMo (referred to as HEA‐Base for undoped Sc, HEA‐Sc0.1, HEA‐Sc0.3, and HEA‐Sc0.5, respectively). The coatings were exposed to 3.5 wt% aqueous sodium chloride solution, simulating a saline water environment at room temperature. The corrosion behavior of HEA coatings was examined using electrochemical methods, including open‐circuit potential, potentiodynamic polarization curves, and electrochemical impedance spectroscopy. Electrochemical analysis showed that the HEA‐Sc0.3 coating exhibited a higher corrosion potential and lower corrosion current density than the HEA‐Base, HEA‐Sc0.1, and HEA‐Sc0.5 coatings, indicating superior corrosion resistance. The addition of Sc enhanced the corrosion resistance of Sc‐doped HEA coatings relative to HEA‐Base, resulting in a reduction in the corrosion rate of approximately 37–74%. This enhancement is attributed to the formation of stable passive oxide layers, such as Cr 2 O 3 , Al 2 O 3 , and Sc 2 O 3 , due to the incorporation of Sc into the HEA matrix. HEA‐Base exhibited pitting, whereas Sc‐doped HEA coatings showed distinct corrosion patterns, with Al–Sc‐rich phases being attacked. Cr‐rich and Mo‐rich phases remained unaffected. These results suggest that incorporating small amounts of Sc into AlCoCrFeMo HEA coatings significantly improves their corrosion resistance.

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Cite This Study

Kumar et al. (2026) studied this question.

synapsesocial.com/papers/69f6e5ac8071d4f1bdfc655ehttps://doi.org/10.1002/adem.70870
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