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Microbial fuel cells operated with iron-chelated air cathodes

机译:带有铁螯合空气阴极的微生物燃料电池

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The use of non-noble metal-based cathodes can enhance the sustainability of microbial fuel cells (MFCs). We demonstrated that an iron-chelated complex could effectively be used as an aerated catholyte or as an iron-chelated open air cathode to generate current with the use of MFCs. An aerated iron ethylene-diaminetetraacetic acid (Fe-EDTA) catholyte generated a maximum current of 34.4 mA and a maximum power density of 22.9 Wm~(-3) total anode compartment (TAC). Compared to a MFC with a hexacyano-ferrate catholyte, the maximum current was similar but the maximum power was 50% lower. However, no replenishment of the Fe-EDTA catholyte was needed. The creation of an activated carbon cloth open air cathode with Fe-EDTA-polytetrafluoroethylene (PTFE) applied to it increased the maximum power density to 40.3 Wm~(-3) TAC and generated a stable current of 12.9 mA (at 300 mV). It was observed that the ohmic loss of an open air cathode MFC was dependent on the type of membrane used. Moreover, increasing the anode electrode thickness of an open air cathode MFC from 1.5 to 7.5 cm, resulted in a lowering of the power and current density.
机译:基于非贵金属的阴极的使用可以增强微生物燃料电池(MFC)的可持续性。我们证明了铁螯合的络合物可以有效地用作充气阴极电解液或铁螯合的露天阴极,从而通过使用MFC产生电流。充气的乙烯-二胺四乙酸铁(Fe-EDTA)阴极电解液产生的最大电流为34.4 mA,最大功率密度为22.9 Wm〜(-3)总阳极室(TAC)。与具有六氰基高铁酸盐阴极电解液的MFC相比,最大电流相似​​,但最大功率降低了50%。然而,不需要补充Fe-EDTA阴极电解液。施加Fe-EDTA-聚四氟乙烯(PTFE)制成的活性炭布露天阴极可将最大功率密度提高到40.3 Wm〜(-3)TAC,并产生12.9 mA的稳定电流(在300 mV时)。观察到露天阴极MFC的欧姆损耗取决于所用膜的类型。此外,将露天阴极MFC的阳极电极厚度从1.5cm增加到7.5cm,导致功率和电流密度降低。

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