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February 26, 2026Metals0 citationsOpen Access

Study of the Microstructure and Properties of CoCrFeNiMnx High-Entropy Alloys

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ZZZhengpeng ZhangSYShichen YanJHJiankang Huang

Key Points

  • The aim is to investigate the microstructure and properties of CoCrFeNiMnx high-entropy alloys as manganese content varies.
  • Fabrication of alloys by vacuum arc melting
  • Characterization using X-ray diffraction, optical microscopy, and scanning electron microscopy with energy-dispersive spectroscopy
  • Microhardness testing and electrochemical testing in NaCl solution
  • Density functional theory calculations and first-principles molecular dynamics analysis
  • XRD indicates a phase transition from FCC to FCC + BCC at x ≥ 1.5
  • Microhardness shows a decrease followed by an increase with manganese content, peaking at x = 2.0
  • Corrosion resistance improves with Mn addition, with the lowest corrosion current density at x = 2.0
  • XPS reveals that passive films are dominated by Fe2O3 and Mn3+ oxides
  • DFT predicts a decrease in Fermi level and narrowed conduction band range with increased Mn

Abstract

High-entropy alloys (HEAs) provide a broad compositional space for tuning phase stability and surface durability. CoCrFeNiMnx (x = 0.5, 1.0, 1.5, and 2.0) alloys were fabricated by vacuum arc melting and characterized by X-ray diffraction (XRD), optical microscopy (OM), scanning electron microscopy with energy-dispersive spectroscopy (SEM/EDS), microhardness testing, electrochemical testing in 3.5 wt.% NaCl, and X-ray photoelectron spectroscopy (XPS). Density functional theory (DFT) calculations and first-principles molecular dynamics were further employed to analyze the Mn-dependent electronic structure and oxygen–metal bonding. The XRD results indicate a transition from a single FCC solid solution at x ≤ 1.0 to an FCC + BCC constitution at x ≥ 1.5. With increasing Mn, microstructures evolve from coarse dendrites toward higher fractions of equiaxed grains. Hardness decreases from 163.6 HV (x = 0.5) to 125.1 HV (x = 1.0) and then increases to 162.6 HV (x = 2.0), indicating competing solid-solution and phase/segregation effects. Electrochemical measurements show enhanced corrosion resistance with Mn addition; the x = 2.0 alloy exhibits the lowest fitted corrosion current density (icorr = 0.3482 × 10−6 μA·cm−2) and the most stable passivation response. XPS reveals passive films dominated by Fe2O3 together with Mn3+ oxides, whose synergistic formation promotes a denser barrier layer. DFT predicts a monotonic decrease in Fermi level and a narrowed conduction band range as Mn increases, consistent with reduced electron transfer activity during anodic dissolution. Interfacial simulations show that O preferentially bonds with Cr and Mn, while Ni–O bonds have the lowest estimated rupture barrier, rationalizing a tendency toward localized corrosion at Ni-associated sites.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/699fe3ec95ddcd3a253e7f8chttps://doi.org/10.3390/met16030250
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