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Updated: Jan 9, 2026

Developing Photosensitizer-Cobaloxime Hybrids for Solar-Driven H2 Production in Aqueous Aerobic Conditions
Published on: October 5, 2019
Embedding Cu4X4 Cubane Clusters into Lead Halide Lattices: Stable 3D Cu-Pb Bimetallic Halide Frameworks for
Dongyang Li1, Wen Ma1, Jinlin Yin1
1Shanghai Key Laboratory of Chemical Assessment and Sustainability, School of Chemical Science and Engineering, Tongji University, 1239 Siping Rd., Shanghai, 200092, China.
Abstract:
3D hybrid lead halides have emerged as promising photofunctional materials; however, the 3D structural prototypes remain scarce due to the stringent requirements for organic cations to fit within the framework cavities and stabilize PbX6 networks. Moreover, their ionic-bound nature and highly symmetric PbX6 units often result in structural instability and suppressed C─C coupling capabilities, posing significant challenges for photocatalytic CO2-to-C2+ conversion in aqueous environments. Herein, a heterometallic crystal engineering strategy is presented for the coordination-driven assembly of two 3D MI/MII bimetallic halides with the general formula Pb6Cu4X10(ida)3 (ida = iminodiacetate, X = Cl-/Br-). The embedding of cubane-type [Cu4X4] clusters within the lead halide frameworks via covalent PbII-X-CuI linkages result in decreased exciton binding energies, smaller Huang-Rhys factors, and extended photoluminescence lifetimes, which suppress exciton trapping and facilitate carrier transport. Both MI/MII halide frameworks feature asymmetric, halogen-bridged heterobimetallic sites (PbII─X─CuI) with intrinsic charge polarization, which facilitate C─C coupling during CO2 photoreduction by stabilizing the key *COCOH intermediates. As a result, these heterobimetallic architectures enable highly selective photocatalytic CO2-to-C2H4 conversion, achieving up to 95% selectivity in pure water. This work demonstrates a viable strategy for atomic-level engineering of 3D metal halides toward solar-driven C2 fuel production.
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