Yang Jiaxuan, Zhao Jing, Wang Hesong, Liu Yatao, Ding Junwen, Wang Tianyi, Wang Jinlong, Zhang Han, Bai Langming, Liang Heng
State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin, 150090, PR China.
Beijing Key Laboratory for Source Control Technology of Water Pollution, College of Environmental Science and Engineering, Beijing Forestry University, Beijing, 100083, PR China.
Environ Sci Ecotechnol. 2024 Mar 21;21:100416. doi: 10.1016/j.ese.2024.100416. eCollection 2024 Sep.
Water reuse is an effective way to solve the issues of current wastewater increments and water resource scarcity. Ultrafiltration, a promising method for water reuse, has the characteristics of low energy consumption, easy operation, and high adaptability to coupling with other water treatment processes. However, emerging organic contaminants (EOCs) in municipal wastewater cannot be effectively intercepted by ultrafiltration, which poses significant challenges to the effluent quality and sustainability of ultrafiltration process. Here, we develop a cobalt single-atom catalyst-tailored ceramic membrane (Co-NCNT-CM) in conjunction with an activated peroxymonosulfate (PMS) system, achieving excellent EOCs degradation and anti-fouling performance. An interfacial reaction mechanism effectively mitigates membrane fouling through a repulsive interaction with natural organic matter. The generation of singlet oxygen at the Co-N-C active sites through a catalytic pathway (PMS→PMS∗→OH∗→O∗→OO∗→O) exhibits selective oxidation of phenols and sulfonamides, achieving >90% removal rates. Our findings elucidate a multi-layered functional architecture within the Co-NCNT-CM/PMS system, responsible for its superior performance in organic decontamination and membrane maintenance during secondary effluent treatment. It highlights the power of integrating Co-NCNT-CM/PMS systems in advanced wastewater treatment frameworks, specifically for targeted EOCs removal, heralding a new direction for sustainable water management.
水的回用是解决当前废水增量和水资源短缺问题的有效途径。超滤作为一种很有前景的水回用方法,具有能耗低、操作简便、与其他水处理工艺耦合适应性强等特点。然而,城市废水中的新兴有机污染物(EOCs)不能被超滤有效截留,这对超滤工艺的出水水质和可持续性构成了重大挑战。在此,我们开发了一种钴单原子催化剂定制的陶瓷膜(Co-NCNT-CM)与活化过一硫酸盐(PMS)系统相结合,实现了优异的EOCs降解和抗污染性能。一种界面反应机制通过与天然有机物的排斥相互作用有效地减轻了膜污染。通过催化途径(PMS→PMS∗→OH∗→O∗→OO∗→O)在Co-N-C活性位点产生单线态氧,对酚类和磺酰胺类物质表现出选择性氧化,去除率>90%。我们的研究结果阐明了Co-NCNT-CM/PMS系统中的多层功能结构,这是其在二级出水处理过程中有机污染物去除和膜维护方面具有卓越性能的原因。它突出了在先进废水处理框架中整合Co-NCNT-CM/PMS系统的作用,特别是对于有针对性地去除EOCs,为可持续水管理开辟了一个新方向。