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May 12, 2026Fuel0 citationsOpen Access

Constructing Electron-Deficient environment in FeCoNiW Medium-Entropy alloys towards efficient alkaline oxygen evolution reaction

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SZShaoze ZhengYZYue ZhaoZGZhihua Gao

Key Points

  • The aim is to enhance the kinetics of the alkaline oxygen evolution reaction (OER) by stabilizing key intermediates using electron-deficient environments in medium-entropy alloys.
  • Developed an FeCoNiW/C electrocatalyst designed for OER efficiency
  • Performed in situ FTIR and density functional theory calculations to analyze electronic structures
  • Evaluated the electrocatalyst's performance under standardized current densities and stability tests.
  • Achieved a low overpotential of 255 mV at 10 mA cm −2, 61 mV lower than commercial RuO2
  • Demonstrated a small Tafel slope of 59.1 mV dec -1, indicating fast reaction kinetics
  • Showed operational stability with a voltage decay of only 0.1 mV h −1 over 100 hours at 100 mA cm −2.

Abstract

• Electron-deficient environment stabilizes the formation of the key OOH* intermediate. • Lattice distortion generates microstrain and abundant unsaturated sites. • The catalyst shows 255 mV overpotential (10 mA cm −2 ), a Tafel slope of 59.1 mV dec -1 , and 150 h chronoamperometry operational stability. The sluggish kinetics of oxygen evolution reaction (OER) presents a central challenge to the overall efficiency of water electrolysis and the modulation of the adsorption strength of oxygenated intermediates, particularly the critical OOH* species is crucial to fasting OER kinetics. Herein, a new strategy to stabilize OOH* intermediate through constructing electron deficient environment in FeCoNiW/C medium-entropy alloys electrocatalyst is reported. The designed electrocatalyst achieves a low overpotential of 255 mV at a current density of 10 mA cm −2 , 61 mV lower than that for commercial RuO 2 , and a small Tafel slope of 59.1 mV dec -1 . Moreover, it also can be operated stably with a voltage decay of only 0.1 mV h −1 in 100 h at 100 mA cm −2 . That superior activity can be attributed to the introduction of highly electronegative element of W, which modulates the electronic structure of Fe/Co/Ni sites and creates a localized electron-deficient environment. In situ FTIR and density functional theory calculations suggest this electron-deficient feature of active sites can facilitate the adsorption of oxygen-containing intermediates and promote the formation of the OOH*, which is rate-determining step for water oxidation. This work also offers a new strategy for the modification and design of advanced OER electrocatalysts.

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Cite This Study

Zheng et al. (2026) studied this question.

synapsesocial.com/papers/6a02c2b9ce8c8c81e96403c8https://doi.org/10.1016/j.fuel.2026.139851
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