School of Energy and Environmental Engineering, University of Science and Technology Beijing, Beijing 100083, China; Beijing Key Laboratory of Resource-oriented Treatment of Industrial Pollutants, Beijing 100083, China; Energy Conservation and Environmental Protection Engineering Research Center in Universities of Beijing, Beijing 100083, China.
School of Energy and Environmental Engineering, University of Science and Technology Beijing, Beijing 100083, China; Beijing Key Laboratory of Resource-oriented Treatment of Industrial Pollutants, Beijing 100083, China; Energy Conservation and Environmental Protection Engineering Research Center in Universities of Beijing, Beijing 100083, China.
Sci Total Environ. 2022 Feb 20;808:151873. doi: 10.1016/j.scitotenv.2021.151873. Epub 2021 Nov 24.
The widespread application of antibiotics have aroused serious pollution over the world. Microbial fuel cell (MFC) air cathode was able to simultaneously recover electricity and perform advanced oxidation of pollutions through electro-Fenton (EF). This study synthesized an iron‑cobalt oxide and graphene composite (FeCoO/GO), which possessed high electrochemical activity and ORR catalytic performance. The uniform decoration of FeCoO/GO in MFC air cathode distinctly increased the electricity generation (4.5 times higher than carbon felt) and oxytetracycline (OTC) degradation and detoxification (1.33 times higher). FeCoO/GO boosted the HO generation from ORR (1.14 times higher than CF) and mineralization efficiency of OTC (2.63 times higher than CF). UPLC-QTOF-MS verified that OTC was degraded and mineralized through decarboxylation, demethylation, and carbon ring cleavage by the oxidation of ·OH. The enhanced degradation of OTC was not only benefited from the increased ORR catalytic performance, but also the excellent HO catalytic activity by Fe and Co for ·OH generation. This study demonstrated an effective strategy by decorating FeCoO/GO in MFC air cathode for the synergistically enhanced ORR and OTC degradation and detoxification, giving promising guidance for the deep removal of antibiotic pollutants in the environment.
抗生素的广泛应用在全球范围内引发了严重的污染问题。微生物燃料电池(MFC)空气阴极能够通过电芬顿(EF)同时回收电能并对污染物进行高级氧化。本研究合成了一种具有高电化学活性和 ORR 催化性能的铁钴氧化物和石墨烯复合材料(FeCoO/GO)。FeCoO/GO 在 MFC 空气阴极中的均匀修饰显著提高了发电(比碳毡高 4.5 倍)和土霉素(OTC)降解和解毒(比碳毡高 1.33 倍)的效果。FeCoO/GO 促进了 ORR 产生的 HO(比 CF 高 1.14 倍)和 OTC 的矿化效率(比 CF 高 2.63 倍)。UPLC-QTOF-MS 验证了 OTC 通过脱羧、去甲基和碳环裂解被·OH 氧化降解和矿化。OTC 的增强降解不仅受益于 ORR 催化性能的提高,还得益于 Fe 和 Co 对·OH 生成的优异 HO 催化活性。本研究通过在 MFC 空气阴极中修饰 FeCoO/GO 展示了一种有效的协同增强 ORR 和 OTC 降解和解毒的策略,为环境中抗生素污染物的深度去除提供了有前景的指导。