电气石负载MIL-125-NH2@UiO-66-NH2复合材料制备及其诺氟沙星吸附性能

Preparation of tourmaline-supported MIL-125-NH2@UiO-66-NH2 composite and its norfloxacin adsorption performance

  • 摘要: 针对水环境中典型氟喹诺酮类抗生素诺氟沙星(Norfloxacin, NOR)的高效去除需求,以天然电气石(Tourmaline, TM)为基底,采用两步溶剂热法结合表面活性剂辅助策略,成功构建了TM负载MIL-125-NH2@UiO-66-NH2的MOF-on-MOF型复合吸附材料(TM/UM-NH2)。采用XRD、FT-IR、SEM、XPS及N2吸脱附等手段对复合材料的结构和表面性质进行了表征,并通过静态吸附实验评价了复合材料的NOR吸附性能。结果表明:TM/UM-NH2的孔径与孔容均高于单一组分MOF;TM/UM-NH2对50 mg/L NOR溶液的吸附容量(210.08 mg/g)分别为TM/MIL-125-NH2(164.27 mg/g)的1.3倍、纯相UiO-66-NH2(120.78 mg/g)的1.7倍,性能提升源于双MOF复合结构提供了更丰富的活性吸附位点和更发达的孔道结构。吸附动力学过程与拟二级动力学模型高度吻合;吸附等温线与Langmuir、Freundlich模型均具有良好的拟合度,且吸附容量随体系温度升高而增大,证实吸附过程为吸热过程。综上,TM/UM-NH2对NOR的吸附是以化学吸附为主导,同时存在均匀表面单层吸附与非均相表面多层吸附的混合吸附过程。吸附机理分析表明,复合材料对NOR的吸附以为静电相互作用主导,氢键作用、π-π堆积作用等多机制协同调控。本研究不仅为水中NOR的高效去除提供了一种新型高性能吸附材料,也为MOF-on-MOF异质结构的设计构建与环境应用提供了理论参考。

     

    Abstract: To address the demand for efficient removal of norfloxacin (NOR), a typical fluoroquinolone antibiotic prevalent in aqueous environments, natural tourmaline (TM) was used as substrate, and a two-step solvothermal route with surfactant assistance was applied to successfully synthesize a MOF-on-MOF composite adsorbent TM/UM-NH2 with MIL-125-NH2@UiO-66-NH2 supported on tourmaline. The structural properties of TM/UM-NH2 were systematically characterized via XRD, FT-IR, SEM, XPS and N2 adsorption-desorption isotherms. Meanwhile, the adsorption performance of TM/UM-NH2 toward NOR was comprehensively evaluated via batch static adsorption experiments. The results showed that TM/UM-NH2 exhibited significantly higher specific pore size and pore volume than that of the single-component MOFs. Its adsorption capacity (210.08 mg/g) for 50 mg/L NOR solution was 1.3 times that of TM/MIL-125-NH2 (164.27 mg/g) and 1.7 times that of pristine UiO-66-NH2 (120.78 mg/g). Such enhanced adsorption performance can be attributed to the dual-MOF composite structure, which provided more abundant active adsorption sites and a more developed pore network. The adsorption kinetic process was highly consistent with the pseudo-second-order kinetic model. The adsorption isotherms were well fitted by both the Langmuir and Freundlich models, and the adsorption capacity increased with the rising system temperature, confirming that the adsorption process was endothermic. Hence, the adsorption of NOR onto TM/UM-NH2 was dominated by chemisorption with mixed monolayer-multilayer behavior, mainly driven by electrostatic interaction synergistically regulated by hydrogen bonding and π-π stacking. This study not only provides a novel high-performance adsorption material for the efficient removal of NOR from water, but also offers theoretical insights for the design, fabrication, and environmental applications of MOF-on-MOF heterogeneous structures.

     

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