Biofilm response and removal via the coupling of visible-light-driven photocatalysis and biodegradation in an environment of sulfamethoxazole and Cr(VI)

光催化 生物降解 矿化(土壤科学) 污染物 环境化学 化学 生物膜 可见光谱 降级(电信) 催化作用 细菌 材料科学 有机化学 氮气 生物 电信 遗传学 光电子学 计算机科学
作者
Liushu Pan,Zhong Wan,Qilin Feng,Jue Wang,Jianhua Xiong,Shuangfei Wang,Hongxiang Zhu,Guoning Chen
出处
期刊:Journal of Environmental Sciences-china [Elsevier]
卷期号:122: 50-61 被引量:14
标识
DOI:10.1016/j.jes.2021.09.038
摘要

The widespread contamination of water systems with antibiotics and heavy metals has gained much attention. Intimately coupled visible -light-responsive photocatalysis and biodegradation (ICPB) provides a novel approach for removing such mixed pollutants. In ICPB, the photocatalysis products are biodegraded by a protected biofilm, leading to the mineralization of refractory organics. In the present study, the ICPB approach exhibited excellent photocatalytic activity and biodegradation, providing up to ∼1.27 times the degradation rate of sulfamethoxazole (SMX) and 1.16 times the Cr(VI) reduction rate of visible-light-induced photocatalysis . Three-dimensional fluorescence analysis demonstrated the synergistic ICPB effects of photocatalysis and biodegradation for removing SMX and reducing Cr(VI). In addition, the toxicity of the SMX intermediates and Cr(VI) in the ICPB process significantly decreased. The use of MoS2/CoS2 photocatalyst accelerated the separation of electrons and holes, with•O2- and h+ attacking SMX and e- reducing Cr(VI), providing an effective means for enhancing the removal and mineralization of these mixed pollutants via the ICPB technique. The microbial community results demonstrate that bacteria that are conducive to pollutant removal are were enriched by the acclimation and ICPB operation processes, thus significantly improving the performance of the ICPB system.
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