光催化
生物降解
盐酸四环素
降级(电信)
矿化(土壤科学)
化学
生物膜
吸附
水处理
微生物
化学工程
四环素
环境化学
环境工程
有机化学
细菌
催化作用
环境科学
氮气
生物化学
生物
遗传学
抗生素
工程类
电信
计算机科学
作者
Huanjun Zhang,Yanan Yu,Yi Li,Li Lin,Chi Zhang,Wenlong Zhang,Longfei Wang,Lihua Niu
出处
期刊:Chemosphere
[Elsevier]
日期:2023-03-01
卷期号:317: 137888-137888
被引量:23
标识
DOI:10.1016/j.chemosphere.2023.137888
摘要
Intimately coupled photocatalysis and biodegradation (ICPB) is a promising technology to remove refractory contaminants from water. The key to successful ICPB is a carrier capable of accumulating biofilm and adhering photocatalyst firmly. Herein, BC/g-C3N4 was prepared into a three dimensional porous hydrogel and used as a carrier in ICPB system for the first time. Degradation experiments revealed that the removal rate of tetracycline hydrochloride (TCH) in water by the ICPB system was 96.0% after 10 h, which was significantly higher than that by the photocatalysis (PC, 76.3%), biodegradation (B, 32.5%), adsorption (AD, 17.2%), and photolysis (P, 5.0%) systems. Photo-electrochemical tests confirmed that ICPB system had superior electron transfer ability between photocatalysts and microorganisms. The removal efficiency of COD proved that microorganisms played an important role in the mineralization process of TCH by the ICPB system. After the ICPB degradation experiment, microorganisms maintained high activity and Pseudomonas, Burkholderiaceae and Flavobacterium which had TCH degradation or electron transport ability, were enriched. In conclusion, the novel ICPB carrier overcame shortcomings of the traditional ICPB carrier and the novel ICPB system had superior degradation performance for TCH. This study provided a possible method to promote the practical application of ICPB technology.
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