Wang Jiaqi, Yang Ganceng, Jiao Yanqing, Yan Haijing, Fu Honggang
Key Laboratory of Functional Inorganic Material Chemistry Ministry of Education of the People's Republic of China, Heilongjiang University, Harbin, 150080, China.
Small Methods. 2025 Feb;9(2):e2301602. doi: 10.1002/smtd.202301602. Epub 2024 Feb 22.
Developing efficient electrocatalysts is significant for the commercial application of electrocatalytic water splitting. 2D materials have presented great prospects in electrocatalysis for their high surface-to-volume ratio and tunable electronic properties. Particularly, MXene emerges as one of the most promising candidates for electrocatalysts, exhibiting unique advantages of hydrophilicity, outstanding conductivity, and exceptional stability. However, it suffers from lacking catalytic active sites, poor oxidation resistance, and easy stacking, leading to a significant suppression of the catalytic performance. Combining MXene with other 2D materials is an effective way to tackle the aforementioned drawbacks. In this review, the focus is on the accurate synthesis of 2D/2D MXene-based catalysts toward electrocatalytic water splitting. First, the mechanisms of electrocatalytic water splitting and the relative properties and preparation methods of MXenes are introduced to offer the basis for accurate synthesis of 2D/2D MXene-based catalysts. Then, the accurate synthesis methods for various categories of 2D/2D MXene-based catalysts, such as wet-chemical, phase-transformation, electrodeposition, etc., are systematically elaborated. Furthermore, in-depth investigations are conducted into the internal interactions and structure-performance relationship of 2D/2D MXene-based catalysts. Finally, the current challenges and future opportunities are proposed for the development of 2D/2D MXene-based catalysts, aiming to enlighten these promising nanomaterials for electrocatalytic water splitting.
开发高效的电催化剂对于电催化水分解的商业应用具有重要意义。二维材料因其高的比表面积和可调节的电子性质在电催化领域展现出巨大的前景。特别是,MXene成为最有前途的电催化剂候选材料之一,具有亲水性、出色的导电性和卓越的稳定性等独特优势。然而,它存在催化活性位点不足、抗氧化性差和易于堆叠等问题,导致催化性能受到显著抑制。将MXene与其他二维材料结合是解决上述缺点的有效方法。在本综述中,重点是二维/二维MXene基催化剂用于电催化水分解的精确合成。首先,介绍电催化水分解的机理以及MXene的相关性质和制备方法,为二维/二维MXene基催化剂的精确合成提供基础。然后,系统阐述各类二维/二维MXene基催化剂的精确合成方法,如湿化学法、相变法、电沉积法等。此外,深入研究二维/二维MXene基催化剂的内部相互作用和结构-性能关系。最后,针对二维/二维MXene基催化剂的发展提出当前面临的挑战和未来机遇,旨在为这些有前途的用于电催化水分解的纳米材料提供启示。