Sun Fang, Qin Lubing, Tang Zhenghua, Tang Qing
School of Chemistry and Chemical Engineering, Chongqing Key Laboratory of Chemical Theory and Mechanism, Chongqing University Chongqing 401331 China
New Energy Research Institute, School of Environment and Energy, South China University of Technology, Guangzhou Higher Education Mega Center Guangzhou 510006 China
Chem Sci. 2024 Sep 6;15(39):16142-55. doi: 10.1039/d4sc04212c.
Thiolate-protected metal nanoclusters (NCs) have been widely used in various electrocatalytic reactions, yet the dynamic evolution of metal NCs during electrocatalysis has been rarely explored and the activity origin remains largely ambiguous. Herein, using a PtAu(SCH) NC as a prototype model, we combined advanced first-principles calculations and attenuated total reflection surface-enhanced infrared spectroscopy (ATR-SEIRAS) to re-examine its active site and reaction dynamics in the hydrogen evolution reaction (HER). It has been previously assumed that the central Pt is the only catalytic center. However, differently, we observed the spontaneous desorption of thiolate ligands under moderate potential, and the dethiolated PtAu exhibits excellent HER activity, which is contributed not only by the central Pt atom but also by the exposed bridged Au sites. Particularly, the exposed Au exhibits high activity even comparable to Pt, and the synergistic effect between them makes dethiolated PtAu an extraordinary HER electrocatalyst, even surpassing the commercial Pt/C catalyst. Our predictions are further verified by electrochemical activation experiments and FTIR (ATR-SEIRAS) characterization, where evident adsorption of Au-H* and Pt-H* bonds is monitored. This work detected, for the first time, the Au-S interfacial dynamics of the PtAu nanocluster in electrocatalytic processes, and quantitatively evaluated the essential catalytic role of the exposed Au sites that has been largely overlooked in previous studies.
硫醇盐保护的金属纳米团簇(NCs)已广泛应用于各种电催化反应中,然而金属纳米团簇在电催化过程中的动态演变却鲜有研究,其活性起源在很大程度上仍不明确。在此,我们以PtAu(SCH)纳米团簇作为原型模型,结合先进的第一性原理计算和衰减全反射表面增强红外光谱(ATR-SEIRAS),重新审视其在析氢反应(HER)中的活性位点和反应动力学。此前人们一直认为中心Pt是唯一的催化中心。然而,不同的是,我们观察到在中等电位下硫醇盐配体的自发解吸,脱硫醇的PtAu表现出优异的HER活性,这不仅由中心Pt原子贡献,还由暴露的桥连Au位点贡献。特别地,暴露的Au表现出甚至与Pt相当的高活性,它们之间的协同作用使脱硫醇的PtAu成为一种非凡的HER电催化剂,甚至超过了商业Pt/C催化剂。我们的预测通过电化学活化实验和FTIR(ATR-SEIRAS)表征进一步得到验证,其中监测到了明显的Au-H和Pt-H键的吸附。这项工作首次探测到了PtAu纳米团簇在电催化过程中的Au-S界面动力学,并定量评估了暴露的Au位点在以往研究中被大量忽视的重要催化作用。