College of Environmental Science and Engineering, Hunan University, Changsha, 410082, China; Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha, 410082, China.
College of Environmental Science and Engineering, Hunan University, Changsha, 410082, China; Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha, 410082, China.
Chemosphere. 2018 Oct;209:246-257. doi: 10.1016/j.chemosphere.2018.06.105. Epub 2018 Jun 15.
The rapid, efficient and selective extraction of heavy metal ions is significant for wastewater pretreatment and metal ion recycle. Using montmorillonite as the template substrate and Pb as template ions, a novel two-dimensional montmorillonite-based surface ion imprinted polymer (IIP-MMT) adsorbent is successfully synthesized via activators generated by electron transfer for atom transfer radical polymerization (AGET-ATRP). Batch adsorption experiments are performed to assess the properties of the imprinted polymer sorbent, along with its selectivity and reusability in practical extraction of Pb. It is interesting that the crosslinking density of the imprinted polymer has impact on the sorption property, where suitable density is coupled with the highest adsorption capacity and the best selectivity. Benefiting from the surface-imprinting technique and AGET-ATRP, IIP2-MMT is proved to own a highly effective Pb adsorption capacity to reach 158.68 mg/g within 30 min, where the corresponding maximum adsorption capacity is 201.84 mg/g. Moreover, this material exhibits satisfactory stability and reusability that the high adsorptive capability of IIP-MMT retains more than 95% after six cycles. Thus, it is expected to reduce the wastewater disposal expenses. Besides, owing to the characteristics of PHEMA brushes and SHA chelating ligand, IIP-MMT has strong anti-interference and anti-blockage abilities to extract Pb from smelting wastewater, slag and contaminated soil. Considering the low cost, excellent stability, high extraction efficiency, environmental friendliness, it is expected that the proposed material is very promising for treatment of heavy metals-contaminated wastewaters and soil, or ion recycle.
快速、高效、选择性地提取重金属离子对于废水预处理和金属离子回收具有重要意义。本研究以蒙脱石为模板底物,Pb 为模板离子,通过电子转移引发原子转移自由基聚合(AGET-ATRP)生成的引发剂,成功合成了一种新型二维蒙脱石基表面离子印迹聚合物(IIP-MMT)吸附剂。通过批吸附实验评估了印迹聚合物吸附剂的性能,以及在实际提取 Pb 中的选择性和可重复使用性。有趣的是,印迹聚合物的交联密度对吸附性能有影响,合适的密度与最高吸附容量和最佳选择性相关。受益于表面印迹技术和 AGET-ATRP,IIP2-MMT 被证明具有高效的 Pb 吸附能力,在 30min 内达到 158.68mg/g,相应的最大吸附容量为 201.84mg/g。此外,该材料表现出良好的稳定性和可重复使用性,经过六次循环后,IIP-MMT 的高吸附能力保留了 95%以上。因此,有望降低废水处理费用。此外,由于 PHEMA 刷和 SHA 螯合配体的特点,IIP-MMT 具有很强的抗干扰和抗堵塞能力,可从冶炼废水、渣和污染土壤中提取 Pb。考虑到成本低、稳定性好、提取效率高、环境友好等特点,预计该材料在处理重金属污染废水和土壤或离子回收方面具有广阔的应用前景。