Electronic structure engineering of transition metal dichalcogenides for boosting hydrogen energy conversion electrocatalysts

Bing Hao, Jingjing Guo, Peizhi Liu, Junjie Guo
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Abstract

Electrocatalytic water splitting for hydrogen production is an appealing strategy to reduce carbon emissions and generate renewable fuels. This promising process, however, is limited by its sluggish reaction kinetics and high-cost catalysts. The two- dimensional (2D) transition metal dichalcogenides (TMDCs) have presented great potential as electrocatalytic materials due to their tunable bandgaps, abundant defective active sites, and good chemical stability. Consequently, phase engineering, defect engineering and interface engineering have been adopted to manipulate the electronic structure of TMDCs for boosting their exceptional catalytic performance. Particularly, it is essential to clarify the local structure of catalytically active sites of TMDCs and their structural evolution in catalytic reactions, using atomic resolution electron microscopy and the booming in situ technologies, which is beneficial for exploring the underlying reaction mechanism. In this review, the growth regulation, characterization, particularly atomic configurations of active sites in TMDCs were summarized. The significant role of electron microscopy for the understanding of the growth mechanism, the controlled synthesis and functional optimization of 2D TMDCs are discussed. This review will shed lights on the design and synthesis of novel electrocatalysts with high performance, as well as prompt the application of advanced electron microscopy in the research of materials science.
促进氢能转换电催化剂的过渡金属二卤化物电子结构工程
电催化水裂解制氢是减少碳排放和产生可再生燃料的一种有吸引力的策略。然而,这一前景广阔的工艺却因反应动力学缓慢和催化剂成本高昂而受到限制。二维(2D)过渡金属二钙化物(TMDCs)具有可调带隙、丰富的缺陷活性位点和良好的化学稳定性,因此作为电催化材料具有巨大的潜力。因此,人们采用相工程、缺陷工程和界面工程来操纵 TMDCs 的电子结构,以提高其卓越的催化性能。尤其是利用原子分辨电子显微镜和蓬勃发展的原位技术,阐明 TMDCs 催化活性位点的局部结构及其在催化反应中的结构演化十分必要,这有利于探索其潜在的反应机理。本综述总结了TMDCs的生长调节、表征,特别是活性位点的原子构型。讨论了电子显微镜在理解二维 TMDC 的生长机制、受控合成和功能优化方面的重要作用。这篇综述将为设计和合成新型高性能电催化剂提供启示,并推动先进电子显微镜在材料科学研究中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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