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Updated: Sep 10, 2025

Synthesis of Platinum-nickel Nanowires and Optimization for Oxygen Reduction Performance
Published on: April 27, 2018
Synergistic Entropy-Rich Alloy Effect and Metal-Support Interaction Fine-Tune the Electronic Structure for Augmented
Xue-Zhi Song1, De-Kun Liu1, Xiao-Bing Wang1
1School of Chemical Engineering, Ocean and Life Sciences, School of General Education, Leicester International Institute, State Key Laboratory of Fine Chemicals, Dalian University of Technology, 2 Dagong Road, Liaodongwan New District, Panjin, Liaoning 124221, China.
Abstract:
Developing multicomponent materials with high activity and establishing the precise regulation tactics of electronic structures at active sites, as well as their underlying mechanism of catalytic activity, are of great significance for oxygen evolution reaction (OER) electrocatalysis. In this study, we utilize the NaCl-templated assisted pyrolysis tactics to prepare a quinary NiCoFeMoZn catalyst, one heterostructure formed between a Zn-doped NiCoFe alloy and MoxC-based phases within a carbon sponge. This smart design enables an effective dual-mode electronic structure fine-tuning strategy, incorporating entropy-induced modulation and metal-support interactions to precisely regulate the electronic structure of Ni active sites and enhance electrocatalytic activity. As a result, the quinary NiCoFeMoZn electrocatalyst exhibits a low overpotential of 286 mV at 10 mA cm-2, which is superior to those of quaternary and ternary counterparts. Furthermore, systematic experimental and theoretical studies confirm the universality of this dual-modality approach, providing an innovative avenue for modulating electronic structure precisely to obtain advanced OER electrocatalysts.
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