Yoo Suhwan, Park Sejin, Son Jihoon, Kim Jiseon, Shin Hyeyoung, Hwang Yun Jeong
Department of Chemistry, Seoul National University, Seoul 08826, Republic of Korea.
Center for Nanoparticle Research, Institute for Basic Science (IBS), Seoul 08826, Republic of Korea.
J Am Chem Soc. 2025 Apr 16;147(15):12996-13007. doi: 10.1021/jacs.5c02954. Epub 2025 Apr 2.
Concentrated cations are often employed to promote electrochemical CO reduction reaction (CORR) selectivity in acidic electrolytes. Here, we investigate the influence of excess cations on the *CO adsorption configuration and the product distribution of the CORR. attenuated total reflectance surface-enhanced infrared absorption spectroscopy (ATR-SEIRAS) reveals that increasing the Cs concentration shifts the preference of the *CO intermediate on the Cu surface from the atop (*CO) to the bridge (*CO) configuration. This transition leads to a sharp decline in C-C coupling and an increase in the hydrogen evolution reaction at high Cs concentrations (0.7 and 1.0 M) under acidic conditions. Time-resolved SEIRAS scans show that *CO is kinetically dominant and the proportion of *CO increases gradually only at high cation concentrations. Density functional theory simulations confirm that Cs on the Cu surface can interact electrostatically with *CO and stabilize *CO over *CO on the Cu surface. The evolution of *CO is also observed on Ag catalysts, indicating that the effect at high concentrations is not limited to Cu. Furthermore, polymeric binders on the Cu surface mitigate these detrimental effects on the CORR and restore CH production by preventing the cation from altering the *CO adsorption sites on the catalyst surface. This study provides new insights into the effects of cations on catalyst performance, with implications for catalyst design and operation.
在酸性电解质中,常使用浓缩阳离子来提高电化学CO还原反应(CORR)的选择性。在此,我们研究了过量阳离子对CO吸附构型和CORR产物分布的影响。衰减全反射表面增强红外吸收光谱(ATR-SEIRAS)表明,增加Cs浓度会使CO中间体在Cu表面的偏好从顶位(CO)转变为桥位(CO)构型。这种转变导致在酸性条件下,高Cs浓度(0.7和1.0 M)时C-C偶联急剧下降,析氢反应增加。时间分辨SEIRAS扫描表明,CO在动力学上占主导地位,只有在高阳离子浓度下CO的比例才会逐渐增加。密度泛函理论模拟证实,Cu表面的Cs可以与CO发生静电相互作用,并使CO在Cu表面上比CO更稳定。在Ag催化剂上也观察到了CO的演变,这表明高浓度时的影响并不局限于Cu。此外,Cu表面的聚合物粘合剂减轻了这些对CORR的有害影响,并通过防止阳离子改变催化剂表面的*CO吸附位点来恢复CH的生成。这项研究为阳离子对催化剂性能的影响提供了新的见解,对催化剂的设计和操作具有启示意义。