光催化
化学
钒酸铋
降级(电信)
电子受体
光化学
污染物
电子顺磁共振
羟基自由基
电子供体
环境化学
废水
催化作用
无机化学
氧气
化学工程
碳纤维
铋
激进的
高级氧化法
钒酸盐
紫外线
溶解有机碳
作者
Yanyang Chu,Feng Cao,Jianyue Gao
出处
期刊:Langmuir
[American Chemical Society]
日期:2026-04-07
卷期号:42 (15): 10574-10587
被引量:1
标识
DOI:10.1021/acs.langmuir.6c00391
摘要
The Fenton process is an important option in the treatment of organic wastewaters, yet its wide application remains difficult due to the high level of consumption of chemicals and the production of iron-containing sludge. Herein, we develop an ultralow-Fe Fenton system based on the great enhancement of Fe 3+ /Fe 2+ cycling promoted by Zn-doped bismuth vanadate (Zn/BiVO 4 ) under visible light and H 2 O 2 in multiple roles. This study first revealed that Zn/BiVO 4 with an oxygen vacancy has high photocatalytic performance with respect to the reduction of dissolved Fe 3+ to Fe 2+ and H 2 O 2 redox. As Zn/BiVO 4 photocatalysis was introduced into the Fenton system, excellent degradation of various organic pollutants was realized even with only 2.0 mg L –1 Fe 3+ . The degradation of ofloxacin for 120 min was nearly 100% efficient, and moreover, this system removed 86.1% chemical oxygen demand (COD) and 84.2% total organic carbon (TOC) from the refuse leachate. Density functional theory (DFT) calculations together with photocurrent, photoluminescence, open circuit potential (OCP), and electron spin resonance (ESR) measurements revealed the Fe 3+ reduction mechanism and showed that the synergistic effect exists in the ultralow-Fe Fenton system. The synergistic effect is mainly manifested as follows. Photocatalytic Fe 3+ reduction can greatly enhance the Fenton reaction, generating the dominant reactive species hydroxyl radical ( • OH) by accelerating Fe 3+ /Fe 2+ cycling, and concurrently, H 2 O 2 can serve as not only an electron acceptor but also an important electron donor. Overall, this study offers comprehensive insights into the developed system and highlights its potential application in wastewater treatment.
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