Yifan Zhang, Xiaoyuan Wang, Yu-Ling Zou, Yujing Xu, Xiaoju Yang, Linfeng Li, Li Zhang, Zhiming Wei, Yueming Zhai, Fu-Zhen Xuan, Wei Wang, Bowei Zhang, Xuan Yang
Palladium-based catalysts have been recognized to be active for the production of syngas with controlled carbon monoxide (CO)/hydrogen gas ratios via the electrochemical carbon dioxide (CO2) reduction reaction (CO2RR); however, the active phase remains the subject of debate. In this work, we have found that the Faradaic efficiency of CO is linearly dependent on the hydride stoichiometry of in situ-generated palladium hydride (PdHx) for palladium (Pd)-based catalysts, despite their different composition, size, and morphology, as well as the applied potential. The active phase for the production of CO via the CO2RR on the surfaces of Pd-based catalysts is revealed to be in situ-generated PdHx. In situ surface-enhanced infrared absorption spectroscopy and electro-optical imaging results demonstrate that in situ-generated PdHx is totally different from chemically synthesized PdHx. Density functional theory calculations demonstrate that the higher stoichiometry of in situ-generated PdHx promotes CO production. Our results provide insights into the rational design of Pd-based catalysts with improved CO2RR performance.