Tian Lin, Li Zhao, Song Ming, Li Jing
C School of Materials and Chemical Engineering, Xuzhou University of Technology, Xuzhou 221018, PR China.
Nanoscale. 2021 Jul 28;13(28):12088-12101. doi: 10.1039/d1nr02232f. Epub 2021 Jul 8.
Two-dimensional (2D) nanostructures have enabled noble-metal-based nanomaterials to be promising electrocatalysts toward overall water splitting due to their inherent structural advantages, including a high specific surface active area, numerous low-coordinated atoms, and a high density of defects and edges. Moreover, it is also disclosed that the electronic effect and strain effect within 2D nanostructures also benefit the further promotion of the electrocatalytic performance. In this review, we have focused on the recent progress in the fabrication of advanced electrocatalysts based on 2D noble-metal-based nanomaterials toward water splitting electrocatalysis. First, fundamental descriptions about water-splitting mechanisms, some promising engineering strategies, and major challenges in electrochemical water splitting are given. Then, the structural merits of 2D nanostructures for water splitting electrocatalysis are also highlighted, including abundant surface active sites, lattice distortion, abundant surface defects, electronic effects, and strain effects. Additionally, some representative water-splitting electrocatalysts have been discussed in detail to highlight the superiorities of 2D noble-metal-based nanomaterials for electrochemical water splitting. Finally, the underlying challenges and future opportunities for the fabrication of more advanced electrocatalysts for water splitting are also highlighted. We hope that this review article provides guidance for the fabrication of more efficient electrocatalysts for boosting industrial hydrogen production via water splitting.
二维(2D)纳米结构因其固有的结构优势,使基于贵金属的纳米材料成为有望用于全水解的电催化剂,这些优势包括高比表面活性面积、大量低配位原子以及高密度的缺陷和边缘。此外,还发现二维纳米结构中的电子效应和应变效应也有利于进一步提升电催化性能。在这篇综述中,我们重点关注了基于二维贵金属基纳米材料制备用于水解电催化的先进电催化剂的最新进展。首先,给出了关于水解机理、一些有前景的工程策略以及电化学水解中的主要挑战的基本描述。然后,还强调了二维纳米结构用于水解电催化的结构优点,包括丰富的表面活性位点、晶格畸变、丰富的表面缺陷、电子效应和应变效应。此外,详细讨论了一些代表性的水解电催化剂,以突出二维贵金属基纳米材料在电化学水解方面的优势。最后,还强调了制备更先进的水解电催化剂面临的潜在挑战和未来机遇。我们希望这篇综述文章能为制备更高效的电催化剂以通过水解促进工业制氢提供指导。