Synthesis of NiMoO<sub>4</sub>/NiMo@NiS Nanorods for Efficient Hydrogen Evolution Reactions in Electrocatalysts

As traditional energy structures transition to new sources, hydrogen is receiving significant research attention owing to its potential as a clean energy source. The most significant problem with electrochemical hydrogen evolution is the need for highly efficient catalysts to drive the overpotential...

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Bibliographic Details
Main Authors: Sen Hu, Cuili Xiang, Yongjin Zou, Fen Xu, Lixian Sun
Format: Article
Language:English
Published: MDPI AG 2023-06-01
Series:Nanomaterials
Subjects:
Online Access:https://www.mdpi.com/2079-4991/13/12/1871
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Summary:As traditional energy structures transition to new sources, hydrogen is receiving significant research attention owing to its potential as a clean energy source. The most significant problem with electrochemical hydrogen evolution is the need for highly efficient catalysts to drive the overpotential required to generate hydrogen gas by electrolyzing water. Experiments have shown that the addition of appropriate materials can reduce the energy required for hydrogen production by electrolysis of water and enable it to play a greater catalytic role in these evolution reactions. Therefore, more complex material compositions are required to obtain these high-performance materials. This study investigates the preparation of hydrogen production catalysts for cathodes. First, rod-like NiMoO<sub>4</sub>/NiMo is grown on NF (Nickel Foam) using a hydrothermal method. This is used as a core framework, and it provides a higher specific surface area and electron transfer channels. Next, spherical NiS is generated on the NF/NiMo<sub>4</sub>/NiMo, thus ultimately achieving efficient electrochemical hydrogen evolution. The NF/NiMo<sub>4</sub>/NiMo@NiS material exhibits a remarkably low overpotential of only 36 mV for the hydrogen evolution reaction (HER) at a current density of 10 mA·cm<sup>−2</sup> in a potassium hydroxide solution, indicating its potential use in energy-related applications for HER processes.
ISSN:2079-4991