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Improved performance of Pseudomonas aeruginosa catalyzed MFCs with graphite/polyester composite electrodes doped with metal ions for azo dye degradation

机译:具有掺杂金属离子的石墨/聚酯复合电极的PSEUDOMONAS铜绿假单胞菌催化MFC的性能提高了偶氮染料降解

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High internal resistance that reduces the power produced in the microbial fuel cells (MFCs) is mainly due to the low electron transfer between the bacterial catalysts and the anode/cathode. In this study, a bulk modified Graphite Polyester composite electrodes (GPECE) doped with metal salts (MS-GPECE) were prepared by casting. Crystallinity, surface morphology, chemical composition and electrochemical properties of all modified electrodes were investigated. Influence of redox behavior of electrodes suited to bacterial metabolism and enhanced biofilm formation have been examined. A laboratory-scale H-shaped Pseudomonas catalyzed microbial fuel cell (MFC) was investigated with different metal doped Graphite Polyester composite electrodes, for its performance in decolorizing synthetic wastewater containing azo dye methyl orange. Among the different combinations of electrodes were tested in MFC, the best performing MFC with the highest power density (1575 +/- 223.26 mu W/m(2)) was seen with Ni-GPECE as the cathode and graphite block as an anode and simultaneous increase in decolorization (89 +/- 1.41%) was also observed. These studies have suggested that the MFC technology can discharge the dual duty of degrading the azo dyes and simultaneous power production.
机译:降低微生物燃料电池(MFCs)中产生的功率的高内阻主要是由于细菌催化剂和阳极/阴极之间的低电子转移。在该研究中,通过浇铸制备掺杂有金属盐(MS-GPECE)的散装改性石墨聚酯复合电极(GPECE)。研究了所有改性电极的结晶度,表面形态,化学成分和电化学性质。研究了适用于细菌代谢和增强的生物膜形成的电极的影响。用不同的金属掺杂石墨聚酯复合电极研究了实验室型H形假单胞菌催化的微生物燃料电池(MFC),其性能在脱色含有偶氮染料甲基橙的合成废水中的性能。在MFC中测试电极的不同组合中,用Ni-GPece作为阴极和石墨块,可以看到具有最高功率密度(1575+/-223.26μW/ m(2))的最佳性能MFC作为阴极和石墨块作为阳极和还观察到同时增加脱色(89 +/- 1.41%)。这些研究表明,MFC技术可以放电降解偶氮染料的双重义务和同时发电。

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