College of Environment and Energy, South China University of Technology, Guangzhou, 510006, China.
College of Environment and Energy, South China University of Technology, Guangzhou, 510006, China; Sino-Singapore International Joint Research Institute, Guangzhou, 510006, China; Guangdong Plant Fiber High-Valued Cleaning Utilization Engineering Technology Research Center, Guangzhou, 510006, China.
Chemosphere. 2020 Feb;240:124875. doi: 10.1016/j.chemosphere.2019.124875. Epub 2019 Sep 16.
Adsorptive removal of phthalate esters from wastewater combined with their persulfate (PS) catalytic degradation has attracted the attention of many researchers. In this study, the adsorptive and catalytic properties of an MIL100 material obtained by a green synthetic route have been optimized by a surface molecular imprinting technique. Results have shown that there are two steps in the molecular imprinting process. A polymerization is first carried out in the internal channels of the material and the imprinting layer is then formed on the surface. The relative proportions of the starting materials for the synthesis have been optimized through the design of a three-dimensional response surface. The amount of pollutant adsorbed was increased fourfold after surface imprinting, reaching 13.6 mg g. The homogeneity of the recognition sites has been evaluated by dynamics calculations and the Freundlich equation. The selective adsorption ability of the material for diethyl phthalate was improved, and the process involved chemical adsorption. The catalytic properties of the material after imprinting were increased about 1.5-fold, indicating that selective adsorption is important. Such molecularly imprinted polymers may potentially serve as good functional materials for the removal of phthalate esters from wastewater.
将吸附法去除废水中的邻苯二甲酸酯与过硫酸盐(PS)催化降解相结合,引起了许多研究人员的关注。本研究采用绿色合成路线,通过表面分子印迹技术优化了 MIL100 材料的吸附和催化性能。结果表明,分子印迹过程存在两个步骤。首先在材料的内部通道中进行聚合,然后在表面形成印迹层。通过三维响应面设计优化了合成起始原料的相对比例。表面印迹后,污染物的吸附量增加了四倍,达到 13.6mg/g。通过动力学计算和 Freundlich 方程评估了识别位的均一性。该材料对邻苯二甲酸二乙酯的选择性吸附能力得到了提高,且该过程涉及化学吸附。印迹后材料的催化性能提高了约 1.5 倍,表明选择性吸附很重要。这种分子印迹聚合物可能有望成为从废水中去除邻苯二甲酸酯的良好功能材料。