Abstract
Copper-based photocatalysts, featuring low cost, versatile valence states (Cu0, Cu+, Cu2+), and outstanding photophysical and photochemical properties, hold great promise for organic synthesis, environmental remediation, and energy conversion. This review systematically examines the pivotal role of variable-valence copper species in photocatalysis, establishing a dual-dimensional framework that spans valence evolution and catalytic systems. It highlights advances in Cu0 active sites, photoexcited Cu+ and Cu2+ species, and heterogeneous platforms such as polymer ligands, metal-organic frameworks, and single-atom catalysts. In homogeneous systems, Cu+ complexes achieve long-lived metal-to-ligand charge transfer states that drive single-electron transfer for C–C/C–X bond formation and alkene/alkyne bifunctionalization. Cu2+ participates in oxidation and radical cycles via ligand-to-metal charge transfer. In heterogeneous systems, Cu0 nanostructures enhance light absorption via localized surface plasmon resonance, while Cu+/Cu2+ semiconductors form Z/S-scheme heterojunctions to improve charge separation. Key strategies, including ligand engineering, defect control, interface design, and single-atom anchoring, are discussed to enhance carrier dynamics and stability. Despite challenges in in-situ characterization, mechanistic elucidation, and scalable synthesis, copper-based photocatalysts offer strong potential for light-driven synthesis, CO2 valorization, and pollutant mineralization. Future efforts should focus on operando spectroscopy and theory-guided design of robust, selective catalysts to bridge fundamental research and industrial application.

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