Magnetism-induced structural defects in MOF-based adsorbents for the highly efficient capture of diclofenac sodium

化学 吸附 水溶液 朗缪尔吸附模型 双氯芬酸钠 多孔性 表面改性 材料科学 比表面积 动力学 色谱法 磁性纳米粒子 表面工程 核化学 朗缪尔 废水 纳米技术 响应面法 多孔介质 化学工程
作者
Caixia Fan,Qicui Wang,Juan Yao,Xiangfu Gu,Pihui Yang,Ahui Peng,Haifeng Li
出处
期刊:Journal of water process engineering [Elsevier BV]
卷期号:82: 109504-109504
标识
DOI:10.1016/j.jwpe.2026.109504
摘要

Engineering structural defects into metal–organic frameworks (MOFs) offer a promising strategy to modulate their porosity and enhance adsorption performance. In this study, we report the synthesis of a novel magnetic porous adsorbent, designated as DLU-1 (DLU, Dali University), featuring hierarchical pore structures. For comparison, the reference sample, pristine UiO-66-NH 2 , was synthesized without defect modulation. Nitrogen adsorption–desorption isotherm analyses revealed that DLU-1 exhibits a significantly larger surface area (745.60 m 2 /g) than pristine UiO-66-NH 2 (311.82 m 2 /g), which is attributed to the presence of structural defects and microporosity. DLU-1 was demonstrated outstanding performance in the removal of diclofenac sodium (DS), achieving a maximum adsorption capacity of 387.92 mg/g at 298 K based on Langmuir isotherm modeling—substantially surpassing pristine UiO-66-NH 2 (83.29 mg/g) and many previously reported MOF-based adsorbents. Moreover, the magnetic characteristics enable DLU-1 to be efficiently separated from aqueous solutions using an external magnetic field. The DLU-1 also exhibited excellent reusability, with negligible loss in adsorption efficiency after three regeneration cycles. This work highlights the synergistic advantages of structural defect engineering and magnetic functionalization in MOFs, offering a viable strategy for the development of high-performance adsorbents for pharmaceutical wastewater treatment. • A magnetic MOF adsorbent (DLU-1) with engineered defects was synthesized using lauric acid. • DLU-1 exhibited a high surface area (745.60 m 2 /g) and mesoporosity due to defect modulation. • Exceptional DS adsorption capacity was achieved (387.92 mg/g at 298 K). • Adsorption followed pseudo-first-order kinetics and Langmuir isotherm model. • DLU-1 showed excellent magnetic separability and reusability.
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