Hou Liqiang, Li Chuang, Jang Haeseong, Kim Min Gyu, Jiang Jian-Zhong, Cho Jaephil, Liu Shangguo, Liu Xien
College of Chemical Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
School of Intelligent Manufacturing, Weifang University of Science and Technology, Weifang, 262700, China.
Adv Mater. 2024 Nov;36(48):e2410039. doi: 10.1002/adma.202410039. Epub 2024 Oct 6.
The rational design of multi-site electrocatalysts with three different functions for facile HO dissociation, H-H coupling, and rapid H release is desirable but difficult to achieve. This strategy can accelerate the sluggish kinetics of the hydrogen evolution reaction (HER) under alkaline conditions. To resolve this issue, a Mo/Ru-based catalyst with three different active sites (Ru/MoC/MoO) is rationally designed and its performance in alkaline HER is evaluated. The experimental results and density functional theory calculations revealed that, at the heterogeneous MoC/MoO interface, the higher valence state of Mo (MoO) and the lower valence state of Mo (MoC) exhibited strong OH and Hbinding energies, respectively, which accelerated HO dissociation. Moreover, the interfacial Ru possessed an appropriate hydrogen binding energy for H-H coupling and subsequent H evolution. Thus, this catalyst significantly accelerated the Volmer step and the Tafel step and, consequently, HER kinetics. This catalyst also demonstrated low overpotentials of 19 and 160 mV at current densities of 10 and 1000 mA cm, respectively, in alkaline media and long-term stability superior to that of most state-of-the-art alkaline HER electrocatalysts. This work provides a rational design principle for advanced multi-site catalytic systems, which can realize multi-electron electrocatalytic reactions.
设计一种具有三种不同功能的多活性位点电催化剂,以实现便捷的羟基解离、氢-氢键耦合和快速的氢释放,这是理想的,但很难实现。这种策略可以加速碱性条件下析氢反应(HER)缓慢的动力学过程。为了解决这个问题,合理设计了一种具有三种不同活性位点(Ru/MoC/MoO)的钼/钌基催化剂,并评估了其在碱性HER中的性能。实验结果和密度泛函理论计算表明,在异质MoC/MoO界面处,高价态的钼(MoO)和低价态的钼(MoC)分别表现出较强的氢氧根和氢结合能,从而加速了羟基解离。此外,界面处的钌具有适合氢-氢键耦合及后续析氢的氢结合能。因此,这种催化剂显著加速了Volmer步骤和Tafel步骤,进而加快了HER动力学过程。在碱性介质中,这种催化剂在电流密度为10和1000 mA cm时的过电位分别低至19和160 mV,并且具有优于大多数最先进的碱性HER电催化剂的长期稳定性。这项工作为先进的多活性位点催化系统提供了一种合理的设计原则,该系统可以实现多电子电催化反应。