State Key Laboratory of Materials Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, No. 30 Puzhu South Road, Pukou District, Nanjing, 211816, People's Republic of China.
Environ Sci Pollut Res Int. 2023 Sep;30(43):97298-97309. doi: 10.1007/s11356-023-29319-6. Epub 2023 Aug 17.
Chitosan-stabilized iron-copper nanomaterials (CS-nZVI/Cu) were successfully prepared and applied to the nitrate removal. Batch experiments were conducted to examine the effects of experimental parameters on nitrate removal, including Cu loading, CS-nZVI/Cu dosages, initial nitrate concentrations, and initial pHs. From the experimental date, it was concluded that CS-nZVI/Cu has a high nitrate removal efficiency, which can be more than 97%, respectively, at Cu loading = 5%, dosages of CS-nZVI/Cu = 3 g/L, initial nitrate concentrations of 30120 mg/L, and initial pH values = 29. Additionally, the kinetic data for CS-nZVI/Cu were found to fit well with the first-order kinetic model with a rate constant of 0.15 (mg∙L)/min, where n=1. The Langmuir model showed a good fit for NO removal, indicating that monolayer chemisorption occurred. The SEM and TEM analyses showed that the addition of chitosan resulted in improved dispersion of the CS-nZVI/Cu. The CS-nZVI/Cu nanomaterials have a more complete elliptical shape and are between 50 and 100 nm in size. The XRD analysis showed that the chitosan encapsulation reduced the oxidation of the iron component and the main product was FeO. The FT-IR analysis showed that the immobilization of chitosan and the iron was accomplished by the ligand interaction. The nitrogen adsorption-desorption isotherm results showed that the CS-nZVI/Cu specific surface area and pore volume decreased significantly after the reaction. Adsorption, oxidation, and reduction are possible mechanisms for nitrate removal by CS-nZVI/Cu. The XPS analysis investigated the contribution of nZVI and Cu in the removal mechanism. Adding copper accelerates the reaction time and rate. In addition, nZVI played a vital role in reducing nitrate to N. Based on these results, it looks like CS-nZVI/Cu could be a satisfactory material for nitrate removal.
壳聚糖稳定的铁铜纳米材料(CS-nZVI/Cu)被成功制备并应用于硝酸盐的去除。通过批实验考察了实验参数对硝酸盐去除的影响,包括 Cu 负载量、CS-nZVI/Cu 投加量、初始硝酸盐浓度和初始 pH 值。从实验数据得出,CS-nZVI/Cu 具有较高的硝酸盐去除效率,在 Cu 负载量为 5%、CS-nZVI/Cu 投加量为 3g/L、初始硝酸盐浓度为 30-120mg/L、初始 pH 值为 2-9 时,硝酸盐去除率可达到 97%以上。此外,CS-nZVI/Cu 的动力学数据符合一级动力学模型,速率常数为 0.15(mg·L)/min,n=1。Langmuir 模型对 NO 去除具有较好的拟合效果,表明发生了单层化学吸附。SEM 和 TEM 分析表明,壳聚糖的加入改善了 CS-nZVI/Cu 的分散性。CS-nZVI/Cu 纳米材料具有更完整的椭圆形形状,尺寸在 50-100nm 之间。XRD 分析表明,壳聚糖的包裹降低了铁组分的氧化,主要产物为 FeO。FT-IR 分析表明,壳聚糖和铁的固定化是通过配体相互作用实现的。氮气吸附-脱附等温线结果表明,CS-nZVI/Cu 的比表面积和孔体积在反应后显著降低。吸附、氧化和还原可能是 CS-nZVI/Cu 去除硝酸盐的机制。XPS 分析研究了 nZVI 和 Cu 在去除机制中的贡献。添加铜可以加速反应时间和速率。此外,nZVI 在将硝酸盐还原为 N 方面发挥了重要作用。基于这些结果,CS-nZVI/Cu 似乎是一种去除硝酸盐的理想材料。