催化作用
生物降解
废水
化学需氧量
电合成
罗丹明B
化学
电极
污水处理
氧气
化学工程
制浆造纸工业
材料科学
电化学
有机化学
环境科学
环境工程
物理化学
光催化
工程类
作者
Jianshe Wang,Ruirui Chen,Tianyi Zhang,Junfeng Wan,Xianglin Cheng,Jian-Hong Zhao,Xinhai Wang
标识
DOI:10.1021/acs.iecr.0c00742
摘要
The current efficiency (CE) of electrogeneration of H2O2 closely determines the cost of the electro-Fenton process and is influenced by two aspects: intrinsic activity of catalysts and application parameters. To understand how the two aspects interplay, in this study, oxidized carbon nanotubes are screened as catalysts and evaluated by comparing CE of H2O2 generation on a rotating ring-disk electrode (CERRDE) and CE on a gas diffusion electrode (CEGDE). The results show that CEGDE is evidently larger than CERRDE, the reason for which is ascribed to sufficient oxygen supply for the GDE, indicating that oxygen supply is more crucial than the intrinsic activity of catalyst. Using optimized parameters for electro-Fenton to treat simulated rhodamine B wastewater, it is shown that the removal efficiency of chemical oxygen demand (COD) is only 57% when rhodamine B is degraded by 99% and completely removing COD would cause much higher energy consumption. Therefore, electro-Fenton is only employed to pretreating refractory wastewater for enhancing the biodegradability. Tests with three types of wastewater confirm the general applicability of enhancing the biodegradability using short-time electro-Fenton treatment.
科研通智能强力驱动
Strongly Powered by AbleSci AI