Xinyu Pang, Ruihan Hou, Zhiling Shen, C Chen, Renhua Zheng, Ruiqiang Yan, T T Wang, T T Wang, T T Wang, T T Wang, Kai Wang, W P Chen, Guobo Huang
The photocatalytic oxidation of ethylene glycol (EG) and water splitting to glycolic acid (GA) coupled with H 2 evolution is promising for solar-to-chemical conversion but suffers from poor selectivity and activity. Herein, we construct a TiO 2 -based photocatalyst with spatially adjacent Cu single atoms (Cu SA ) and Au clusters (Au C ) via an in situ adsorption-pyrolysis and subsequent photodeposition strategy. Electron microscopy and X-ray absorption fine structure spectroscopy confirm the atomically dispersed Cu sites with spatially adjacent Au clusters. The electron microscopy, X-ray photoelectron, and in situ Raman spectroscopy reveal that Cu SA modulates the electronic and geometric structures of Au C sites. The optimized Au C -Cu SA /TiO 2 exhibits excellent performance for EG oxidation to GA coupled with H 2 production. Mechanistic studies demonstrate that Au C activates interfacial water to generate reactive oxygen species for selective EG oxidation, while adjacent Cu SA facilitates electron enrichment and proton reduction for H 2 evolution. This work provides a dual-active-site interfacial synergy strategy for efficient photocatalytic redox coupling.