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[(DPEPhos)(bcp)Cu]PF6: A General and Broadly Applicable Copper-Based Photoredox Catalyst
Published on: May 21, 2019
Efficient photosensitization and surface ligand-controlled ultrafast electron transfer in copper nanoclusters in
Chinmayee Patra1,2, Joyoti Ghosh1,2, Himanshu Bhatt1,2
1School of Chemical Sciences, National Institute of Science Education and Research (NISER), An OCC of Homi Bhabha National Institute, Jatni, Khurda, Bhubaneswar 752050, Odisha, India. msarkar@niser.ac.in.
Abstract:
Ultrasmall metal nanoclusters (MNCs) are emerging as efficient photosensitizers due to their discrete electronic states and prolonged excited-state lifetimes; however, a clear understanding of their ultrafast excited-state dynamics, particularly in aqueous media, remains limited for earth-abundant copper nanoclusters (CuNCs). Herein, we investigate the ligand-dependent photoinduced electron transfer (PET) dynamics and photosensitizing activity of tannic acid and cysteine-capped CuNCs (TA-CuNCs and Cys-CuNCs) in water. To probe the photosensitizing capabilities of CuNCs, we have investigated the photoreduction of methyl viologen (MV2+), a model molecular electron acceptor, by CuNCs (electron donor) in aqueous solution. Using ultrafast transient absorption spectroscopy (TAS), complemented by steady-state and time-resolved optical measurements, we have directly monitored charge carrier evolution from femtosecond to nanosecond timescales, revealing pronounced ligand-controlled differences in charge separation and recombination pathways. TA-CuNCs have exhibited slower back electron transfer and longer-lived charge-separated states compared to Cys-CuNCs, enabling more efficient interfacial electron transfer. These ultrafast spectroscopic insights confirm the photosensitizing ability of TA-CuNCs in aqueous medium, as demonstrated by their ability to drive photoinduced redox reactions, exemplified by the reduction of ferricyanide to ferrocyanide. This work establishes a direct correlation between ligand-modulated ultrafast dynamics and photosensitizing efficiency and further links it to improved photocatalytic performance in water, highlighting the critical role of surface chemistry in governing charge-transfer processes. The findings provide fundamental design principles for developing sustainable, high-performance MNCs-based photocatalysts for aqueous-phase energy and environmental applications.

