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Azo dye treatment with simultaneous electricity production in an anaerobic-aerobic sequential reactor and microbial fuel cell coupled system

机译:厌氧-好氧顺序反应器和微生物燃料电池耦合系统中同时发电的偶氮染料处理

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A microbial fuel cell and anaerobic-aerobic sequential reactor coupled system was used for azo dye degradation with simultaneous electricity production. Electricity was produced during the co-metabolism process of glucose and azo dye. A microorganism cultured graphite-granular cathode effectively decreased the charge transfer resistance of the cathode and yielded higher power density. Operation parameters including glucose concentration and hydraulic retention time were optimized. The results indicated that recovering electricity during a sequential aerobic-anaerobic azo dye treatment process enhanced chemical oxygen demand removal and did not decrease azo dye removal. Moreover. UV-vis spectra and GC-MS illustrated that the azo bond was cleaved biologically in the anaerobic chamber and abiotically in the aerobic chamber. The toxic intermediates, aromatic amines, were removed by aerobic treatment. Our work demonstrated that the microbial fuel cell and sequential anode-cathode reactor coupled system could be applied to achieve electricity production with simultaneous azo dye degradation.
机译:微生物燃料电池和厌氧-好氧顺序反应器耦合系统用于偶氮染料的降解并同时发电。在葡萄糖和偶氮染料的共代谢过程中产生了电。微生物培养的石墨颗粒阴极有效降低了阴极的电荷转移电阻,并产生了更高的功率密度。优化了包括葡萄糖浓度和水力停留时间在内的操作参数。结果表明,在顺序好氧-厌氧的偶氮染料处理过程中恢复电力可以增强化学需氧量的去除,而不会降低偶氮染料的去除。此外。紫外可见光谱和GC-MS表明,偶氮键在厌氧室中被生物裂解,在需氧室中被非生物裂解。通过有氧处理去除了有毒的中间体芳香胺。我们的工作表明,微生物燃料电池和顺序的阳极-阴极反应器耦合系统可用于实现电力生产,同时使偶氮染料降解。

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