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Updated: Jul 16, 2026

Simple Methods for the Preparation of Non-noble Metal Bulk-electrodes for Electrocatalytic Applications
Published on: June 21, 2017
MoRu-integrated multiphase high-entropy electrocatalysts with surface reconstruction and multi-site synergy for
Chunmei Ni1, Hao Wang2, Jiaxin Tu2
1Universities' Key Laboratory of Functional Materials for Production, Storage and Utilization of Industrial By-Product Hydrogen in Jiangsu, Xuzhou University of Technology, Xuzhou 221018, PR China; Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, Jiangsu Province 213164, China.
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FeCoNi-based catalysts for the alkaline hydrogen evolution reaction (HER) are limited by sluggish reaction kinetics and excessively strong adsorption of hydrogen intermediates (H*). In this work, Mo and Ru were incorporated into the FeCoNi matrix via freeze-drying followed by high-temperature calcination, yielding a nitrogen-doped carbon-supported MoRuFeCoNi-based multiphase high-entropy electrocatalyst (MHEE/NC). The as-prepared catalyst features a three-dimensional (3D) porous framework with uniformly distributed metal species, in which spontaneous electron transfer occurs from Fe, Co, and Ni to Mo and Ru. Electrochemical measurements demonstrate that the optimized catalyst exhibits an overpotential of only 29 mV and a Tafel slope of 50.19 mV dec-1 at 10 mA cm-2. No noticeable performance degradation is observed after 100 h of chronopotentiometric testing. Furthermore, when assembled into an overall water-splitting system with MHEE/NC as the cathode and commercial RuO2 as the anode, the device delivers a cell voltage of 1.55 V at 10 mA cm-2. In-situ and ex-situ characterizations reveal dynamic surface reconstruction and multi-site synergistic effects. The oxide phases undergo dynamic surface reconstruction, generating a metal-rich active surface that optimizes interfacial water adsorption. Mo effectively promotes water activation and primarily accelerates the Volmer step, while metallic Ru0 species serve as the dominant active centers for H* adsorption and desorption. Consequently, the HER pathway shifts from a Heyrovsky-controlled mechanism to a mixed Volmer-Heyrovsky mechanism, in which both the Volmer and Heyrovsky steps jointly determine the reaction rate.
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