Inorganic Chemistry· 2026Q1
Dual-Optimized Medium-Entropy Alloy Heterojunction: Synergistically Enhancing Surface Kinetics and Interfacial Mass Transfer for Hydrazine-Assisted Hydrogen Evolution
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- 2026year
Short summary
A novel medium-entropy heterojunction electrocatalyst (Co0.226Fe0.277Ni0.209Mo0.288/MoS2/CC) with superwetting properties significantly improves bubble detachment and reaction kinetics for hydrazine-assisted hydrogen evolution, achieving low overpotentials of 28 mV for HER and -6 mV for HzOR at 10 mA cm–2.
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Key points
- A medium-entropy heterojunction (Co0.226Fe0.277Ni0.209Mo0.288/MoS2/CC) was designed using a topological transformation strategy.
- The catalyst possesses superwetting properties (superhydrophilic/superaerophobic) enhancing bubble detachment efficiency.
- It demonstrates dual optimization of reaction kinetics and interfacial mass transfer for hydrazine-assisted hydrogen evolution.
- Achieves low overpotentials: 28 mV for HER and -6 mV for HzOR at 10 mA cm–2.
- A membrane-free overall hydrazine splitting system requires only 0.247 V to deliver 100 mA cm–2.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract To address the prominent “bubble shielding” effect at high current densities during hydrazine oxidation reaction (HzOR) as a replacement for the traditional oxygen evolution reaction (OER), this study successfully designed a medium-entropy heterojunction electrocatalyst (Co0.226Fe0.277Ni0.209Mo0.288/MoS2/CC) featuring discontinuous three-phase contact lines through a topological transformation strategy. The catalyst exhibits unique superwetting properties (superhydrophilic/superaerophobic), significantly enhancing bubble detachment efficiency during gas evolution. In situ microscopic observations reveal that the bubble sizes released from the surface are markedly smaller than those form Pt/C/CC under current densities of 10 and 100 mA cm–2. In addition, the Co0.226Fe0.277Ni0.209Mo0.288/MoS2/CC achieves dual optimization of reaction kinetics and interfacial mass transfer through the synergistic effect of enhanced N2H4 adsorption capacity and reduced H* desorption energy barrier, achieves outstanding bifunctional performance in hydrazine-assisted water electrolysis system, requiring overpotential of only 28 mV for HER and work-potential of −6 mV for HzOR to reach a current density of 10 mA cm–2. Furthermore, a membrane-free overall hydrazine splitting (OHzS) system with Co0.226Fe0.277Ni0.209Mo0.288/MoS2/CC as an electrode requires only 0.247 V to deliver 100 mA cm–2. This work provides novel insights for designing efficient and stable gas-evolving electrocatalysts, contributing significantly to advancing sustainable energy conversion technologies.
The authors' abstract, as published at the source. Inorganic Chemistry, 2026 · DOI ↗
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Field: Renewable Energy, Sustainability and the Environment
Renewable Energy, Sustainability and the EnvironmentEnergy