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Influence of the Cathode Platinum Loading and of the Implementation of Membranes on the Performance of Air-Breathing Microbial Fuel Cells

机译:阴极铂负载和膜的影响对空气呼吸微生物燃料电池性能的影响

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The use of catalysts and membranes in microbial fuel cells (MFCs) is rather controversial. Platinum is the best catalyst to improve the oxygen reduction reaction and the implementation of an ion exchange membrane may help to avoid the oxygen leakages from the cathode to the anode compartments and, therefore, the losses of efficiencies associated to the use of oxygen by microorganisms as the immediate electron acceptor. In this work, it is studied the influence of the platinum loading in the cathode and the implementation of membrane on the performance of an air-breathing MFC. To do this, four cells were operated for 50 days in order to clarify the effect of the platinum loading contained in the cathode (0.25, 0.50, 1.00, and 2.00 mg Pt cm(-2)) and two additional MFCs for more than 100 days in order to evaluate the effect of the membrane on the performance of the MFC. The results obtained point out that the performance of the MFC, in terms of maximum current density and power density from the polarization curves, depends strongly on the Pt content of the cathode. This indicates that under open-circuit conditions the cathode controls the performance. Nonetheless, during the closed-circuit operation (under 120 Omega resistance), the performance is not cathodically limited as there are no significant changes between the four cells. This suggests that the performance of the MFC is limited by the anodic process. Likewise, the separation of the anode and cathode by a membrane attains a faster stabilization of the MFC and a slight improvement in the production of electricity, although for air-breathing MFC, this element does not seem to be as crucial as for other types of MFCs.
机译:在微生物燃料电池(MFC)中使用催化剂和膜是相当争议的。铂是改善氧还原反应的最佳催化剂,并且离子交换膜的实施可能有助于避免阴极与阳极隔室的氧气泄漏,因此,与微生物使用氧气相关的效率损失立即电子受体。在这项工作中,研究了铂载荷在阴极中的影响和膜的呼吸MFC性能的实施。为此,将四个细胞运行50天,以澄清阴极中含有的铂负载(0.25,0.50,1.00和2.00mg Pt cm(-2))的效果,以及超过100的额外MFC几天以评估膜对MFC性能的影响。得到的结果指出,在偏振曲线的最大电流密度和功率密度方面,MFC的性能强烈依赖于阴极的PT含量。这表明在开路条件下,阴极控制性能。尽管如此,在闭环操作(120欧米加电阻下)期间,性能不是阴极限制,因为四个细胞之间没有显着变化。这表明MFC的性能受到阳极过程的限制。同样地,阳极和阴极通过膜的分离达到MFC的更快稳定性,并且在电力的生产中略有改善,尽管对于空气呼吸MFC,该元素似乎并不像其他类型一样至关重要MFCS。

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