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◆ Angewandte Chemie (International ed. in English)2026-08-26

Orbital Fine-Tuning of d/p-Band Centers Enables Highly Preferential Single-Electron Oxygen Activation.

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

原始摘要(英文原文)· Original abstract
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.
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Orbital Fine-Tuning of d/p-Band Centers Enables Highly Preferential Single-Electron Oxygen Activation. — 科研速览 Science Skim