Wang Shuhua, Xu Jinghua, Hu Sisi
College of Resources and Environmental Science, Quanzhou Normal University, 398 Donghai Road, Quanzhou 362000, China.
College of Resources and Environmental Science, Quanzhou Normal University, 398 Donghai Road, Quanzhou 362000, China.
Sci Total Environ. 2024 Apr 15;921:170877. doi: 10.1016/j.scitotenv.2024.170877. Epub 2024 Feb 13.
The recovery of metals from solid waste for use as heterogeneous catalysts to activate peroxymonosulfate (PMS) for organic wastewater treatment is a promising, environmentally friendly and economical strategy. Herein, we present a facile and versatile strategy for upcycling copper (Cu) from waste printed circuit boards (PCBs) to Cu oxides supported on a three-dimensional carbon framework (10PCBs-Cu-TA) with the aid of tannic acid (TA). Compared to the PCBs-Cu synthesized without TA, introducing TA into 10PCBs-Cu-TA reduced Cu leaching, enhanced crystallinity, promoted electron transfer, and increased the number of oxygen vacancies. Moreover, 10PCBs-Cu-TA exhibited superior catalytic activity in activating PMS for the degradation of reactive brilliant blue KN-R, exceeding the activity of 10Cu-TA prepared using commercial Cu(NO)·3HO. This enhanced performance may be attributed to the higher specific surface area and oxygen vacancies of 10PCBs-Cu-TA. The 10PCBs-Cu-TA/PMS system also exhibited broad catalytic universality and adaptability to various contaminants and water matrices. Quenching experiments, electron paramagnetic resonance analysis, and electrochemical measurements indicated that radical and non-radical processes jointly contributed to KN-R degradation. The proposed strategy for upcycling Cu from waste PCBs into functional materials provides novel insights into the utilization of solid waste and the development of PMS activators.
从固体废物中回收金属以用作多相催化剂来活化过一硫酸盐(PMS)用于有机废水处理是一种很有前景、环境友好且经济的策略。在此,我们提出了一种简便且通用的策略,借助单宁酸(TA)将废弃印刷电路板(PCBs)中的铜(Cu)升级转化为负载在三维碳骨架上的氧化铜(10PCBs - Cu - TA)。与未使用TA合成的PCBs - Cu相比,将TA引入10PCBs - Cu - TA中可减少Cu浸出、提高结晶度、促进电子转移并增加氧空位数量。此外,10PCBs - Cu - TA在活化PMS降解活性艳蓝KN - R方面表现出优异的催化活性,超过了使用市售Cu(NO)·3HO制备的10Cu - TA的活性。这种增强的性能可能归因于10PCBs - Cu - TA具有更高的比表面积和氧空位。10PCBs - Cu - TA/PMS体系还表现出对各种污染物和水基质的广泛催化通用性和适应性。淬灭实验、电子顺磁共振分析和电化学测量表明,自由基和非自由基过程共同促进了KN - R的降解。所提出的将废弃PCBs中的Cu升级转化为功能材料的策略为固体废物的利用和PMS活化剂的开发提供了新的见解。