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Enhanced electrical contact of microbes using Fe304/CNT nanocomposite anode in mediator-less microbial fuel cell

机译:在无介体的微生物燃料电池中使用Fe304 / CNT纳米复合阳极增强微生物的电接触

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摘要

A novel Fe_3O_4/CNT nanocomposite was synthesized and employed for the modification of carbon paper anode in a mediator-less microbial fuel cell (MFC) to enhance its performance. The Fe304/CNT composite modified anodes with various Fe_3O_4 contents were investigated to find the optimum ratio of the nanocomposite for the best MFC performance. The Fe_3O_4/CNT modified anodes produced much higher power densities than unmodified carbon anode and the 30 wt% Fe_3O_4/CNT modified anode exhibited a maximum power density of 830 mW/m~2. In the Fe_3O_4/CNT composite modified anode, Fe_3O_4 helps to attach the CNT on anode surface by its magnetic attraction and forms a multi layered network, whereas CNT offers a better nanostructure environment for bacterial growth and helps electron transfer from E.coli to electrode resulting in the increase in the current production with the catalytic activity of bacteria. The electrocatalytic behavior and all possible mechanism for their better performance are discussed in detail with the help of various structural and electrochemical techniques.
机译:合成了一种新型的Fe_3O_4 / CNT纳米复合材料,并用于无介体微生物燃料电池(MFC)中碳纸阳极的改性,以提高其性能。研究了具有不同Fe_3O_4含量的Fe304 / CNT复合改性阳极,以找到纳米复合材料的最佳比例,以获得最佳的MFC性能。 Fe_3O_4 / CNT修饰的阳极产生的功率密度比未修饰的碳阳极高得多,并且30wt%的Fe_3O_4 / CNT修饰的阳极具有830 mW / m〜2的最大功率密度。在Fe_3O_4 / CNT复合改性阳极中,Fe_3O_4通过其磁引力帮助将CNT附着在阳极表面并形成多层网络,而CNT为细菌生长提供了更好的纳米结构环境,并有助于电子从大肠杆菌转移到电极上在当前产量的增加中具有细菌的催化活性。在各种结构和电化学技术的帮助下,详细讨论了电催化行为及其所有可能的性能更好的机理。

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