Li Site, Nagarajan Anantha Venkataraman, Li Yingwei, Kauffman Douglas R, Mpourmpakis Giannis, Jin Rongchao
Department of Chemistry, Carnegie Mellon University, Pittsburgh, Pennsylvania 15213, USA.
Department of Chemical Engineering, University of Pittsburgh, Pittsburgh, Pennsylvania 15261, USA.
Nanoscale. 2021 Feb 4;13(4):2333-2337. doi: 10.1039/d0nr07832h.
Ligand effects are of major interest in catalytic reactions owing to their potential critical role in determining the reaction activity and selectivity. Herein, we report ligand effects in the CO2 electrochemical reduction reaction at the atomic level with three unique Au25 nanoclusters comprising the same kernel but different protecting ligands (-XR, where X = S or Se, and R represents the carbon tail). It is observed that a change in the carbon tail shows no obvious impact on the catalytic selectivity and activity, but the anchoring atom (X = S or Se) strongly affects the electrocatalytic selectivity. Specifically, the S site acts as the active site and sustains CO selectivity, while the Se site shows a higher tendency of hydrogen evolution. Density functional theory (DFT) calculations reveal that the energy penalty associated with the *COOH formation is lower on the S site by 0.26 eV compared to that on the Se site. Additionally, the formation energy of the product (*CO) is lower on the sulfur-based Au nanocluster by 0.43 eV. We attribute these energetic differences to the higher electron density on the sulfur sites of the Au nanocluster, resulting in a modified bonding character of the reaction intermediates that reduce the energetic penalty for the *COOH and *CO formation. Overall, this work demonstrates that S/Se atoms at the metal-ligand interface can play an important role in determining the overall electrocatalytic performance of Au nanoclusters.
由于配体在决定催化反应活性和选择性方面可能发挥关键作用,因此在催化反应中,配体效应备受关注。在此,我们报道了三种独特的Au25纳米团簇在原子水平上对二氧化碳电化学还原反应的配体效应,这三种纳米团簇具有相同的内核,但保护配体不同(-XR,其中X = S或Se,R代表碳链)。研究发现,碳链的变化对催化选择性和活性没有明显影响,但锚定原子(X = S或Se)强烈影响电催化选择性。具体而言,S位点作为活性位点,保持对CO的选择性,而Se位点则表现出更高的析氢倾向。密度泛函理论(DFT)计算表明,与Se位点相比,S位点上COOH形成的能量势垒低0.26 eV。此外,基于硫的金纳米团簇上产物(CO)的形成能低0.43 eV。我们将这些能量差异归因于金纳米团簇硫位点上更高的电子密度,这导致反应中间体的键合特性发生改变,从而降低了COOH和CO形成的能量势垒。总体而言,这项工作表明金属-配体界面处的S/Se原子在决定金纳米团簇的整体电催化性能方面可以发挥重要作用。