Linlin Cui, Haiyan Yang, Congying Zhao, Minjie Wang, Qian Zhang, Ying-Ying Zhang, Chao Huang, Xiaodan Huang
The design and development of photocatalysts capable of precisely regulating the reaction sites in selective systems with multiple active centers remains a central challenge. In this study, selective control over multiple reaction sites was achieved by integrating a zinc coordination polymer (Zn-CP, 1 ), photoactive semiconductor CdS nanoparticles, and polyacrylonitrile (PAN) to construct CdS@1/PAN composites via electrospinning, followed by an in situ growth strategy, leveraging the synergistic catalytic effect of CPs and CdS nanoparticles. Fiber-based 1/PAN membranes with homogeneous and well-established pre-structural units were fabricated via electrospinning by tuning the relative proportions of PAN and 1 . Subsequently, CdS nanoparticles were immobilized on the optimized 1/PAN fibrous framework via an in situ approach to form CdS@1/PAN composites with tunable CdS loadings, while preserving the pristine fibrous structure with periodically and accessibly dispersed catalytically active sites. Consequently, the CdS@1/PAN composites as photocatalysts exhibited effective photocatalytic performance in the selective depolymerization of the lignin model under blue light irradiation. In particular, the CdS 0.09 @1/PAN composite, which demonstrated excellent controllability and favorable photoelectrochemical properties, achieved remarkable photocatalytic efficiency in a selective one-step depolymerization process, generating the desired aromatic monomer, acetophenone, and phenol derivatives with high activity.