Textile Pollution Controlling Engineering Center of Ministry of Environmental Protection, College of Environmental Science and Engineering, Donghua University, Shanghai, 201620, China.
Textile Pollution Controlling Engineering Center of Ministry of Environmental Protection, College of Environmental Science and Engineering, Donghua University, Shanghai, 201620, China.
Environ Res. 2022 Jan;203:111944. doi: 10.1016/j.envres.2021.111944. Epub 2021 Aug 21.
Herein, an expanded granular sludge bed (EGSB) reactor with activated carbon (AC)-nano manganese dioxide (MnO) added was employed for azo dye wastewater treatment to investigate its effectiveness at decolorizing of azo dyes and removing COD. The results showed that the treatment of azo dye wastewater with the AC-MnO modified EGSB reactor gave an 83% average decolorization efficiency, which was more efficient than the pure AC modified EGSB reactor. Moreover, the COD removal and changes in the intermediate products were controlled by AC-MnO. Additionally, there was a sharp increase in the sludge conductivity, while there was a significant decrease in the coenzyme F concentration with long-term operation. Moreover, electrochemical analysis showed that the addition of AC-MnO can enhance electron transfer in anaerobic system. The AC-MnO can act as redox mediator; in the presence of the Mn/Mn cycle, accelerating the electron transfer between the microbial cells and dyes, thereby promoting the decolorization of azo dyes. This caused a decrease in the methanogenic activity. Furthermore, high-throughput sequencing showed that the relative abundances of Pseudomonas and Desulfovibrio were significantly high among the acidogenic bacteria community, while Methanobacterium and Methanosaeta had very low abundances from among the methanogenic archaea community.
在此,采用添加了活性炭(AC)-纳米二氧化锰(MnO)的膨胀颗粒污泥床(EGSB)反应器处理偶氮染料废水,以研究其对偶氮染料脱色和去除 COD 的效果。结果表明,AC-MnO 改性 EGSB 反应器处理偶氮染料废水的平均脱色效率为 83%,比纯 AC 改性 EGSB 反应器更有效。此外,AC-MnO 控制 COD 去除和中间产物的变化。此外,随着长期运行,污泥电导率急剧增加,辅酶 F 浓度显著降低。此外,电化学分析表明,添加 AC-MnO 可以增强厌氧系统中的电子转移。AC-MnO 可以作为氧化还原介体;在 Mn/Mn 循环的存在下,加速微生物细胞和染料之间的电子转移,从而促进偶氮染料的脱色。这导致产甲烷活性降低。此外,高通量测序表明,产酸菌群落中假单胞菌和脱硫弧菌的相对丰度明显较高,而产甲烷古菌群落中甲烷杆菌和甲烷八叠球菌的丰度非常低。