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Caulobacter crescentus as a novel exoelectricigen in a dual chambered microbial fuel cell (MFC)

机译:作为一种新型微生物燃料电池(MFC)中的裂缝杆菌作为一种新的exoelecticen

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Changes in the exoelectricigens, architecture of the fuel cell, materials used for electrodes and proton exchange membrane and electrolytic chemistry can be used to increase power generation in microbial fuel cells (MFCs). The design of the MFC used in the study facilitated efficient transfer of protons from the anodic chamber to the cathodic chamber while scavenging the oxygen in the anodic chamber. Caulobacter crescentus was used as exoelectricigen. This organism is used for the first time in a microbial fuel cell. The MFC was operated with different electrodes. Performance of Graphite, Carbon cloth, Aluminum and copper were monitored with a source meter (Keithley 2420). Amongst the different combinations of electrodes employed, Aluminium-copper had a higher power density of 24000mW/m2when compared to other electrodes. The resistance of the system with respect to the electrodes were 0.12mΩ for the aluminum anode, 0.55mΩ for the graphite sheet and 0.72 mΩ carbon cloth anode which were deduced from the power density curves.
机译:exoelectricigens的变化,燃料电池的架构,用于电极的材料和质子交换膜和电解化学的材料可用于增加微生物燃料电池(MFC)中的发电。在研究中使用的MFC的设计有助于从阳极室的质子转移到阴极室,同时清除阳极室中的氧气。花瓣杆菌用作exoelectricen。该生物在微生物燃料电池中首次使用。 MFC用不同的电极进行操作。用源仪(Keithley 2420)监测石墨,碳布,铝和铜的性能。在采用的电极的不同组合中,铝 - 铜的功率密度为24000mW / m 2 与其他电极相比。铝阳极相对于电极的电阻为0.12mΩ,对于石墨片的铝阳极,0.55mΩ,从功率密度曲线推导出0.72mΩ的碳布阳极。

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