Design and Application of Imidazole-Based Hyper-Crosslinked Polymer-Stabilized Silver Nanoclusters for Wastewater Treatment
Jinxia Yao, Shiting Lu, Shuai Liang, Jingxun Kong, Yilin Fu, Zihao Wang, Han Miao, Xinxin LiAbstract
Stabilizing metal nanoclusters in porous organic frameworks while maintaining accessible mass-transfer pathways is essential for maximizing metal-site utilization in heterogeneous catalysis. Herein, we developed a clotrimazole-derived imidazole hyper-crosslinked polymer, HCP-C, as a structurally and electronically tailored scaffold for immobilizing Ag nanoclusters. Clotrimazole serves as a multifunctional building block that combines abundant aromatic sites for hyper-crosslinking, Ag-coordinating imidazole N atoms, a polarizable N/π-electron-rich heteroaromatic environment, and bulky steric protection. By regulating the FeCl3/DPX ratio, the pore structure and pore size distribution of HCP-C were systematically tuned, enabling a balance between Ag confinement and reactant diffusion. The optimized HCP-C framework enabled the uniform stabilization of Ag nanoclusters mainly in the range of 1−2 nm. Systematic control experiments and catalytic optimization confirmed that the activity was governed by the combined effects of Ag dispersion, Ag-site accessibility, pore-assisted mass transfer, and molecular stabilization rather than Ag loading alone. The optimized HCP-C-6-1 catalyst efficiently promoted the degradation of three representative organic pollutants, sunset yellow, phenol red, and 4-nitrophenol, at 15 °C, affording apparent rate constants of 1.567, 0.118, and 0.911 min−1, respectively. It also exhibited a low activation energy of 35.985 kJ·mol−1 and retained more than 99.7% sunset yellow removal after seven consecutive cycles. This work highlights clotrimazole-derived HCPs as readily accessible porous microenvironments for stabilizing and electronically regulating Ag active sites, offering a versatile platform for low-metal-consumption and energy-efficient catalytic degradation of diverse organic pollutants.