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Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells

机译:微生物燃料电池可调节尺寸的呼吸阴极中铁-尼卡巴嗪衍生的铂族无金属电催化剂

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摘要

In this work, a platinum group metal-free (PGM-free) catalyst based on iron as transitional metal and Nicarbazin (NCB) as low cost organic precursor was synthesized using Sacrificial Support Method (SSM). The catalyst was then incorporated into a large area air-breathing cathode fabricated by pressing with a large diameter pellet die. The electrochemical tests in abiotic conditions revealed that after a couple of weeks of successful operation, the electrode experienced drop in performances in reason of electrolyte leakage, which was not an issue with the smaller electrodes. A decrease in the hydrophobic properties over time and a consequent cathode flooding was suspected to be the cause. On the other side, in the present work, for the first time, it was demonstrated the proof of principle and provided initial guidance for manufacturing MFC electrodes with large geometric areas. The tests in MFCs showed a maximum power density of 1.85 W m−2. The MFCs performances due to the addition of Fe-NCB were much higher compared to the iron-free material. A numerical model using Nernst-Monod and Butler-Volmer equations were used to predict the effect of electrolyte solution conductivity and distance anode-cathode on the overall MFC power output. Considering the existing conditions, the higher overall power predicted was 3.6 mW at 22.2 S m−1 and at inter-electrode distance of 1 cm.
机译:在这项工作中,使用牺牲载体法(SSM)合成了以铁为过渡金属和尼卡巴嗪(NCB)为低成本有机前体的无铂族金属催化剂(不含PGM)。然后将催化剂掺入通过用大直径粒料模头压制而制成的大面积透气阴极中。在非生物条件下的电化学测试表明,在成功运行了几周之后,由于电解液泄漏,电极的性能下降了,这对于较小的电极而言不是问题。疏水性随着时间的流逝而降低,并因此导致阴极溢流被认为是原因。另一方面,在本工作中,这是第一次证明了原理的证明,并为制造大几何面积的MFC电极提供了初步指导。 MFC中的测试显示最大功率密度为1.85 W m -2 。与不含铁的材料相比,由于添加了Fe-NCB而使MFCs的性能高得多。使用能斯特-莫诺德(Nernst-Monod)和巴特勒-沃尔默(Butler-Volmer)方程的数值模型用于预测电解质溶液电导率和阳极距离对整体MFC功率输出的影响。考虑到现有条件,在22.2 S m -1 且电极间距离为1 cm时,预计更高的总功率为3.6 mW。

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