Weikun Ren, Guixi Wang, Xinyu Qian, Feike Zhang, Jun Wang, Kang Ji, Junyue Yin, Hongjing Wang, Xiaoke Li, H. J. Yang, Ruilong Liu, Yingjie Ji, Shiyu Wang, Jingyu Wu, Wanlong Bai, Zhiyu Yang, Yi‐Ming Yan
The instability of Cu + species under reductive conditions severely limits the efficiency and durability of electrochemical CO 2 reduction to ethylene (C 2 H 4 ). Here we report a hydroxyl-mediated hydrogen spillover strategy utilizing a core–shell Cu 2 O@SiO 2 catalyst to achieve robust Cu + stabilization and enhanced C 2 H 4 selectivity. The amorphous SiO 2 shell contains abundant surface hydroxyl (Si–OH) groups generated in situ upon hydration, which serve as active channels for hydrogen spillover to deplete adsorbed hydrogen (*H) from the Cu 2 O core. This process lowers local *H coverage on Cu sites, suppressing both the hydrogen evolution reaction (HER) and the reduction of Cu + to Cu 0 . Meanwhile, strong interfacial interaction between Cu 2 O and SiO 2 further stabilizes Cu–O bonds, promoting the persistence of catalytically active Cu + species. As a result, the Cu 2 O@SiO 2 catalyst achieves a C 2 H 4 Faradaic efficiency (FE) of 46.2% at −1.2 V vs RHE, 2.2 times higher than that of pristine Cu 2 O, and maintains stable ethylene production for over 50 h. This work demonstrates a generalizable approach for manipulating the catalyst microenvironment via hydroxyl-mediated hydrogen spillover and provides pathways for designing high-performance CO 2 electroreduction catalysts with durable Cu + stabilization.