Zili Lin, Yanli Wang, Zhenjun Xiao, Ping Chen, Yishun Wang, Lingzhi Shen, Zheng Hu, Zihong Xu, Siling Zhang, Linsheng Liu, Zheng Fang, Daguang Li, Wenying Lv, Guoguang Liu
The single-electron photocatalytic reduction of molecular oxygen to superoxide radicals (O2 •-) represents the rate-determining step in environmental photochemistry, yet achieving high selectivity toward this pathway remains a formidable challenge. Here, we introduce a conceptually driven orbital-hybridization strategy to precisely regulate the d/p orbitals of polymeric phenylethynylcopper (PECu) through chlorine doping. Rather than acting as a conventional heteroatom dopant, Cl- serves as an "orbital fine-tuner", enhancing the coordination polarization of C≡C─Cu units and shortening the Cu─Cu ladder spacing to construct an efficient metal-metal charge-transfer (MMCT) channel. This interfacial electronic engineering markedly improved d/p-band center proximity (Δεd-p), thereby optimizing the adsorption and activation of O2 intermediates at alkyne active sites. The optimized PCC photocatalyst exhibits exceptional selectivity for the O2 → O2 •- single-electron reduction pathway, achieving a superoxide yield of 471.38 µmol/L and significantly enhanced water decontamination performance. This work extends conventional band-center engineering from activity optimization to highly preferential single-electron oxygen activation by identifying d/p-band-center proximity as a key electronic descriptor governing selective single-electron O2 reduction.