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Comparison of various techniques to characterize a single chamber microbial fuel cell loaded with sulfate reducing biocatalysts

机译:比较各种表征载有硫酸盐还原生物催化剂的单室微生物燃料电池的技术

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A single-chamber microbial fuel cell (SCMFC) with a carbon supported Pt-cathode for the oxygen reduction reaction (ORR), and loaded with a sulfate reducing bacterial consortium as biocatalyst in the anodic chamber was characterized by polarization by variable resistance (VR) and linear sweep voltammetry (LSV) methods. From VR a whole cell configuration maximum volumetric power of 92.5 mW m ~(-3) was attained at a current density of 459 A m ~(-3) and voltage of 0.202 V. The LSV method of whole cell configuration gave a higher maximum power density of 197.5 mW m -3 at current density of 696 mA m ~(-3) at the potential of 0.284V; this disagreement was ascribed to possible reduction of power and potential overshoot with the LSV. There was a fair agreement between internal resistance values of whole cell configuration determined by VR and electrochemical impedance spectroscopy (EIS): 2225 and 2307 Ω, respectively. Yet, internal resistance measured by LSV was 30% lower for the whole cell configuration. Both LSV and EIS show the advantage of reduced potential overshoot; yet, EIS provides more detailed information on equivalent circuit of the cell and resistance contributions of the electrodes, electrolyte and membrane. Further cyclic voltammetry tests gave midpoint potential of -0.215 V vs saturated calomel electrode, a value close to those reported for bacterial cytochromes involved in extracellular electron transfer processes. It is concluded that in spite of particular advantages of some techniques over others, the combination of electrochemical methods can be very valuable for shedding light and internal checking of the main characteristics of a microbial fuel cell.
机译:单腔微生物燃料电池(SCMFC),其碳负载的Pt阴极用于氧还原反应(ORR),并在阳极室中装有硫酸盐还原细菌财团作为生物催化剂,其特征在于通过可变电阻(VR)极化。和线性扫描伏安法(LSV)。通过VR,在459 A m〜(-3)的电流密度和0.202 V的电压下,整个电池配置的最大体积功率达到92.5 mW m〜(-3)。LSV方法在整个电池配置中给出了更高的最大值功率密度为197.5 mW m -3,电流密度为696 mA m〜(-3),电势为0.284V;这种分歧归因于LSV可能会降低功耗和潜在的过冲。通过VR确定的整个电池结构的内部电阻值与电化学阻抗谱(EIS)之间存在合理的一致性:分别为2225Ω和2307Ω。然而,对于整个电池配置,通过LSV测量的内部电阻要低30%。 LSV和EIS均显示出减少潜在超调的优势;然而,EIS提供了有关电池等效电路以及电极,电解质和膜的电阻贡献的更多详细信息。进一步的循环伏安测试给出了相对于饱和甘汞电极的中点电势为-0.215 V,该值接近报道的参与细胞外电子转移过程的细菌细胞色素的电势。结论是,尽管某些技术相对于其他技术具有特殊优势,但电化学方法的组合对于减少光线和内部检查微生物燃料电池的主要特性还是非常有价值的。

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