School of Environment and Natural Resources, Renmin University of China, Beijing, 100872, China.
College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, China.
Environ Sci Pollut Res Int. 2018 Nov;25(31):31705-31717. doi: 10.1007/s11356-018-3134-4. Epub 2018 Sep 12.
In this research, the adsorptive removal of diclofenac sodium, one of the representative pharmaceuticals and personal care products, from aqueous solution using FeO@MOF-100(Fe) magnetic microspheres was studied for the first time. The FeO@MOF-100(Fe) microspheres exhibit strong magnetism and stability, which were observed as a core-shell structure. The maximum adsorption capacity of FeO@MOF-100(Fe) for diclofenac sodium can reach 377.36 mg L, which was higher than most of the adsorbents reported. The adsorption kinetics follows the pseudo-second-order kinetic equation. And the adsorption equilibrium of DCF can be described with Langmuir isotherm. In the cycle experiment, FeO@MOF-100(Fe) material performed high adsorption efficiency for low-concentration diclofenac sodium solution, and the removal rate can still reach 80% after 5 cycles of adsorption without desorption. The mechanisms including electrostatic interaction, H-bond interaction, and π-π interaction that coexisted in the adsorption processes would be of benefit to enhance the adsorption capacity. The FeO@MOF-100(Fe) magnetic microspheres offer exciting opportunities for further application.
本研究首次采用 FeO@MOF-100(Fe) 磁性微球从水溶液中吸附去除二氯芬酸钠(一种代表性的药物和个人护理产品)。FeO@MOF-100(Fe) 微球具有强磁性和稳定性,呈核壳结构。FeO@MOF-100(Fe) 对二氯芬酸钠的最大吸附容量可达 377.36mg/L,高于大多数报道的吸附剂。吸附动力学符合拟二级动力学方程。DCF 的吸附平衡可以用 Langmuir 等温线来描述。在循环实验中,FeO@MOF-100(Fe) 材料对低浓度二氯芬酸钠溶液表现出高吸附效率,吸附 5 次后无需解吸,去除率仍可达 80%。吸附过程中存在静电相互作用、氢键相互作用和π-π相互作用等多种机制,有利于提高吸附能力。FeO@MOF-100(Fe) 磁性微球为进一步应用提供了令人兴奋的机会。