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Updated: Sep 10, 2025

Synthesis of Metal Nanoparticles Supported on Carbon Nanotube with Doped Co and N Atoms and its Catalytic Applications in Hydrogen Production
Published on: December 6, 2021
High-Entropy Alloy Electron-Penetrated Nitrogen-Doped Carbon Interface Breaking Activity-Stability Trade-off in
Jingyu Wang1, Zhenxi Chen1, Jiaqi Xiang1
1Hunan Provincial Key Laboratory of Micro & Nano Materials Interface Science, College of Chemistry and Chemical Engineering, Central South University, Changsha 410083, China.
Abstract:
The electrocatalytic two-electron oxygen reduction reaction (2e- ORR) has emerged as an environmentally friendly approach for on-demand H2O2 production. In acidic H2O2 electrosynthesis, the active interfaces react with both oxygen-containing intermediates and oxidative acid, resulting in an activity-stability trade-off. Herein, we propose to construct a high-entropy alloy electron-penetrated and stable nitrogen-doped carbon interface for acidic electrosynthesis of H2O2. As a proof of concept, a typical catalyst with the MoNiCuCoIn high-entropy alloy encapsulated in few-layer nitrogen-doped carbon (MoNiCuCoIn@CN) is developed. The experimental results and theoretical calculations confirm that the MoNiCuCoIn core activates the outer carbon layer via interfacial electronic penetration, which generates optimal adsorption of an oxygen-involved intermediate and thus high 2e- ORR activity. The robustness of the catalyst structure of MoNiCuCoIn@CN ensures remarkable 2e- ORR stability in acid. Therefore, the catalyst delivers a record-high acidic performance with a H2O2 Faradaic efficiency (FEH2O2) of >90% from -50 to -300 mA cm-2 and a sustained FEH2O2 of up to 120 h at a high current density of -250 mA cm-2. This work highlights the multimetal-carbon interface for addressing the activity-stability trade-off in harsh electrocatalysis, providing fundamental insights for the design of a next-generation catalyst.
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