College of Environment, Zhejiang University of Technology, Hangzhou 310032, Zhejiang province, PR China.
College of Life Science, North China University of Science and Technology, Tangshan 063000, Hebei province, PR China.
Sci Total Environ. 2017 Sep 1;593-594:286-296. doi: 10.1016/j.scitotenv.2017.03.180. Epub 2017 Mar 24.
Using polydopamine-metal ions complex as precursor, hollow mesoporous N-doped carbon microspheres encapsulating spinel ferrites nanocrystals (HM-NC/CoFeO) were facilely prepared with the aim of creating a novel heterogeneous catalyst for sulfate radical-based oxidation of organic contaminants. The surface morphology, structure and composition of HM-NC/CoFeO catalyst were thoroughly investigated. The applicability of the catalyst was systematically assessed through numerous controlled trials, several operating parameters, as well as different model pollutants by means of peroxymonosulfate (PMS) activation. Outstanding efficiency and excellent reusability were achieved due to the unique structure and composition of HM-NC/CoFeO. The HM-NC scaffold with high porosity and surface area not only stabilizes the CoFeO nanoparticles but also greatly facilitates the accessibility and adsorption of substrates to the active sites. In addition, both HM-NC and CoFeO on the material surface can act as active sites. Sulfate radicals and hydroxyl radicals are identified as main active species and a possible enhancement mechanism of catalytic performance is also proposed. Due to the simple synthesis method, low-cost precursors, unique structure and excellent catalytic activity and stability, this novel composite have great potential as new strategic materials for remediation of water pollution.
使用聚多巴胺-金属离子配合物作为前驱体,我们制备了一种新型的非均相催化剂,即空心介孔氮掺杂碳微球包裹尖晶石型铁氧体纳米晶(HM-NC/CoFeO),用于基于硫酸根自由基的有机污染物氧化反应。详细研究了 HM-NC/CoFeO 催化剂的表面形态、结构和组成。通过大量的对照实验、多个操作参数以及不同的模型污染物,对催化剂的适用性进行了系统评估,实现了过一硫酸盐(PMS)的活化。由于 HM-NC/CoFeO 的独特结构和组成,该催化剂具有出色的效率和优异的可重复使用性。具有高孔隙率和表面积的 HM-NC 支架不仅稳定了 CoFeO 纳米颗粒,而且还极大地促进了底物向活性位点的可及性和吸附。此外,材料表面上的 HM-NC 和 CoFeO 都可以作为活性位点。鉴定出硫酸根自由基和羟基自由基是主要的活性物质,并提出了一种可能的催化性能增强机制。由于其简单的合成方法、低成本的前体、独特的结构以及优异的催化活性和稳定性,这种新型复合材料作为水污染修复的新型战略材料具有巨大的潜力。