Zhang Chenyun, Wang Jie, Jin Jianjiao, Wang Jiahao, Bai Te, Xu Jiacheng, Wang Shun, Xu Lihua, Zhang Jing
Wuxi Vocational Institute of Arts & Technology, Yixing, Jiangsu, 214200, China.
Kaishi Faurecia Aftertreatment Control Technologies Co., Ltd, Wuxi, Jiangsu, 214000, China.
ChemistryOpen. 2024 Nov;13(11):e202400136. doi: 10.1002/open.202400136. Epub 2024 Aug 30.
With the ever-growing global demand for sustainable energy solutions, hydrogen has garnered significant attention as a clean, efficient, and renewable energy source. In the field of hydrogen production, catalyst research stands out as one of the foremost areas of focus. In recent years, the preparation of electrocatalysts using ionic liquids (ILs) and deep eutectic solvents (DESs) has attracted widespread attention. ILs and DESs possess unique physicochemical properties and are recognized as green media as well as functional materials. Cobalt-based catalysts have proven to be efficient electrocatalysts for water splitting. Incorporating ILs or DESs into the preparation of cobalt-based catalysts offers a remarkable advantage by allowing precise control over their structural design and composition. This control directly influences the adsorption properties of the catalyst's surface and the stability of reaction intermediates, thereby enabling enhanced control over reaction pathways and product selectivity. Consequently, the catalytic activity and stability of cobalt-based catalysts can be effectively improved. In the process of preparing cobalt-based catalysts, ILs and DESs can serve as solvents and templates. Owing to the good solubility of ILs and DESs, they can efficiently dissolve raw materials and provide a special nucleation and growth environment, obtaining catalysts with novel-structures. The main focus of this review is to provide a detailed introduction to metal cobalt and its oxide/hydroxide derivatives in the field of water splitting, with a particular emphasis on the research progress achieved through the utilization of IL and DES. The aim is to assist readers in designing and synthesizing novel and high-performance electrochemical catalysts.
随着全球对可持续能源解决方案的需求不断增长,氢气作为一种清洁、高效且可再生的能源受到了广泛关注。在制氢领域,催化剂研究是最重要的关注领域之一。近年来,使用离子液体(ILs)和深共熔溶剂(DESs)制备电催化剂引起了广泛关注。离子液体和深共熔溶剂具有独特的物理化学性质,被认为是绿色介质以及功能材料。钴基催化剂已被证明是用于水分解的高效电催化剂。将离子液体或深共熔溶剂纳入钴基催化剂的制备过程中,通过对其结构设计和组成进行精确控制,具有显著优势。这种控制直接影响催化剂表面的吸附性能和反应中间体的稳定性,从而能够更好地控制反应途径和产物选择性。因此,可以有效提高钴基催化剂的催化活性和稳定性。在制备钴基催化剂的过程中,离子液体和深共熔溶剂可以作为溶剂和模板。由于离子液体和深共熔溶剂具有良好的溶解性,它们能够有效地溶解原料,并提供特殊的成核和生长环境,从而获得具有新颖结构的催化剂。本综述的主要重点是详细介绍水分解领域中的金属钴及其氧化物/氢氧化物衍生物,特别强调通过利用离子液体和深共熔溶剂所取得的研究进展。目的是帮助读者设计和合成新型高性能电化学催化剂。