Molybdenum disulfide as hydrogen evolution catalyst: From atomistic to materials structure and electrocatalytic performance

二硫化钼 材料科学 制作 纳米技术 催化作用 制氢 剥脱关节 化学工程 石墨烯 化学 冶金 生物化学 医学 工程类 病理 替代医学
作者
Mohsin Muhyuddin,Giorgio Tseberlidis,M. Acciarri,Oran Lori,Massimiliano D’Arienzo,Massimiliano Cavallini,Plamen Atanassov,Lior Elbaz,Alessandro Lavacchi,Carlo Santoro
出处
期刊:Journal of Energy Chemistry [Elsevier BV]
卷期号:87: 256-285 被引量:51
标识
DOI:10.1016/j.jechem.2023.08.011
摘要

Hydrogen production via water electrolysis defines the novel energy vector for achieving a sustainable society. However, the true progress of the given technology is hindered by the sluggish and complex hydrogen evolution reaction (HER) occurring at the cathodic side of the system where overpriced and scarce Pt-based electrocatalysts are usually employed. Therefore, efficient platinum group metals (PGMs)-free electrocatalysts to carry out HER with accelerated kinetics are urgently demanded. In this scenario, molybdenum disulfide (MoS2) owing to efficacious structural attributes and optimum hydrogen-binding free energy (ΔGH*) is emerging as a reliable alternative to PGMs. However, the performance of MoS2-based electrocatalysts is still far away from the benchmark performance. The HER activity of MoS2 can be improved by engineering the structural parameters i.e., doping, defects inducement, modulating the electronic structure, stabilizing the 1T phase, creating nanocomposites, and altering the morphologies using appropriate fabrication pathways. Here, we have comprehensively reviewed the majority of the scientific endeavors published in recent years to uplift the HER activity of MoS2-based electrocatalysts using different methods. Advancements in the major fabrication strategies including hydrothermal synthesis methods, chemical vapor deposition, exfoliation techniques, plasma treatments, chemical methodologies, etc. to tune the structural parameters and hence their ultimate influence on the electrocatalytic activity in acidic and/or alkaline media have been thoroughly discussed. This study can provide encyclopedic insights about the fabrication routes that have been pursued to improve the HER performance of MoS2-based electrocatalysts.
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