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Article

Unraveling the Superior High-Temperature Oxidation Behavior of FeNiCuAl-Based High-Entropy Alloys: Roles of Cr, Co, and Mn Alloying Additions

School of Mechanical and Electrical Engineering, North University of China, Taiyuan 030051, China
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Authors to whom correspondence should be addressed.
Materials 2026, 19(10), 2152; https://doi.org/10.3390/ma19102152
Submission received: 24 April 2026 / Revised: 15 May 2026 / Accepted: 17 May 2026 / Published: 20 May 2026
(This article belongs to the Section Metals and Alloys)

Abstract

This study proposes a novel synergistic design strategy to enhance the oxidation resistance of FeNiCuAl-based high-entropy alloys by integrating multi-element alloying (Cr-Co-Mn), trace Y modification, and laser-cladding-induced nanocrystallization. While the Base Alloy exhibited a mass gain of approximately 15 mg/cm2 after oxidation at 900 °C for 120 h, the addition of Cr2.5Co2.5Mn2.5 promoted the formation of a multilayered oxide scale (outer MnCr2O4/inner Al2O3), reducing the parabolic oxidation rate constant to 1.7 × 10−5 mg2·cm−4·s−1. The originality of this work lies in the coupling of compositional and microstructural engineering; further addition of 0.5 at.% Y decreased this constant to 1.7 × 10−6 mg2·cm−4·s−1—a three-order-of-magnitude reduction relative to the Base Alloy, while increasing the apparent oxidation activation energy to ~350 kJ/mol. After 100 thermal cycles at 1000 °C, the designed alloy showed a mass change of only 0.05 ± 0.02 mg/cm2, with its critical load and interfacial fracture energy reaching 78 N and 14.8 J/m2, respectively. Furthermore, the alloy retained a hardness of 310 HV, an elastic modulus of 135 GPa, and a tensile strength of 240 MPa at elevated temperature. These results demonstrate that the synergistic integration of chemical and structural optimization provides a new paradigm for designing low-cost, high-performance FeNiCuAl-based protective coatings.
Keywords: high-entropy alloys; high-temperature oxidation; trace yttrium doping; nanocrystallization; oxidation-resistant coating materials high-entropy alloys; high-temperature oxidation; trace yttrium doping; nanocrystallization; oxidation-resistant coating materials

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MDPI and ACS Style

Ren, K.; Gao, X.; Yang, R.; Fu, J. Unraveling the Superior High-Temperature Oxidation Behavior of FeNiCuAl-Based High-Entropy Alloys: Roles of Cr, Co, and Mn Alloying Additions. Materials 2026, 19, 2152. https://doi.org/10.3390/ma19102152

AMA Style

Ren K, Gao X, Yang R, Fu J. Unraveling the Superior High-Temperature Oxidation Behavior of FeNiCuAl-Based High-Entropy Alloys: Roles of Cr, Co, and Mn Alloying Additions. Materials. 2026; 19(10):2152. https://doi.org/10.3390/ma19102152

Chicago/Turabian Style

Ren, Kai, Xiaofei Gao, Rui Yang, and Jianping Fu. 2026. "Unraveling the Superior High-Temperature Oxidation Behavior of FeNiCuAl-Based High-Entropy Alloys: Roles of Cr, Co, and Mn Alloying Additions" Materials 19, no. 10: 2152. https://doi.org/10.3390/ma19102152

APA Style

Ren, K., Gao, X., Yang, R., & Fu, J. (2026). Unraveling the Superior High-Temperature Oxidation Behavior of FeNiCuAl-Based High-Entropy Alloys: Roles of Cr, Co, and Mn Alloying Additions. Materials, 19(10), 2152. https://doi.org/10.3390/ma19102152

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