Tao Lei, Huang Baoyu, Zhao Yitao
Jiangsu Province Engineering Research Center of Special Functional Textile Materials, Changzhou Vocational Institute of Textile and Garment, Changzhou, 213164, China.
Changzhou Sveck Photovoltaic New Material Co., Ltd, Changzhou, Jiangsu, 213200, China.
Chem Rec. 2023 Oct;23(10):e202300097. doi: 10.1002/tcr.202300097. Epub 2023 May 26.
Low-dimensional high-entropy alloy (HEA) nanomaterials are widely employed as electrocatalysts for energy conversion reactions, due to their inherent advantages, including high electron mobility, rich catalytically active site, optimal electronic structure. Moreover, the high-entropy, lattice distortion, and sluggish diffusion effects also enable them to be promising electrocatalysts. A thorough understanding on the structure-activity relationships of low-dimensional HEA catalyst play a huge role in the future pursuit of more efficient electrocatalysts. In this review, we summarize the recent progress of low-dimensional HEA nanomaterials for efficient catalytic energy conversion. By systematically discussing the fundamentals of HEA and properties of low-dimensional nanostructures, we highlight the advantages of low-dimensional HEAs. Subsequently, we also present many low-dimensional HEA catalysts for electrocatalytic reactions, aiming to gain a better understanding on the structure-activity relationship. Finally, a series of upcoming challenges and issues are also thoroughly proposed as well as their future directions.
低维高熵合金(HEA)纳米材料因其固有的优势,包括高电子迁移率、丰富的催化活性位点、优化的电子结构等,被广泛用作能量转换反应的电催化剂。此外,高熵、晶格畸变和扩散迟缓效应也使它们成为有前景的电催化剂。深入理解低维HEA催化剂的结构-活性关系对于未来寻求更高效的电催化剂具有巨大作用。在这篇综述中,我们总结了低维HEA纳米材料用于高效催化能量转换的最新进展。通过系统地讨论HEA的基本原理和低维纳米结构的性质,我们突出了低维HEA的优势。随后,我们还展示了许多用于电催化反应的低维HEA催化剂,旨在更好地理解结构-活性关系。最后,还全面提出了一系列即将面临的挑战和问题以及它们的未来发展方向。