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A microbial fuel cell using permanganate as the cathodic electron acceptor

机译:一种以高锰酸盐为阴极电子受体的微生物燃料电池

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The microbial fuel cell (MFC) was proved to be a novel bioprocess capable of recovering electrical energy from organic matter. In this study, we report that by using permanganate as the cathodic electron acceptor for a MFC we were actually able to recover much more electrical power than using other existing types of electron acceptors, e.g. using permanganate as the cathodic electron acceptor for a two-chamber MFC generated a maximum power density of 115.60mWm~(-2) which was, respectively, 4.5- and 11.3-fold higher than that produced by using hexacynoferrate (25.62 mW m~(-2)) and oxygen (10.2 mW m~(-2)) as the cathodic electron acceptor. This could be attributed to the higher open circuit potential (OCP) provided by permanganate in the MFC. Besides, pH, unlike permanganate concentration, was further found to have a major impact on the OCP and the cathode potential. SEM and XPS analysis demonstrated that manganese dioxide (MnO_2) was in fact the main reduced product of the permanganate at pH 3.6. Moreover, as compared to a two-chamber MFC, a bushing MFC using permanganate as the cathodic electron acceptor achieved an unprecedented maximum power-output of 3986.72 mWm~(-2). This study for the first time showed that permanganate could be used as an effective cathodic electron acceptor for a MFC.
机译:事实证明,微生物燃料电池(MFC)是一种能够从有机物中回收电能的新型生物过程。在这项研究中,我们报告说,通过使用高锰酸盐作为MFC的阴极电子受体,我们实际上能够比使用其他现有类型的电子受体(例如,高聚物)回收更多的电能。使用高锰酸盐作为两腔MFC的阴极电子受体时,其最大功率密度分别为115.60mWm〜(-2),分别比六氰基高铁酸盐(25.62 mW m〜( -2))和氧气(10.2 mW m〜(-2))作为阴极电子受体。这可能归因于MFC中高锰酸盐提供的较高的开路电势(OCP)。此外,与高锰酸盐浓度不同,进一步发现pH对OCP和阴极电势有重大影响。 SEM和XPS分析表明,二氧化锰(MnO_2)实际上是pH为3.6时高锰酸盐的主要还原产物。而且,与二室MFC相比,使用高锰酸盐作为阴极电子受体的套管MFC达到了3986.72 mWm〜(-2)的空前最大功率输出。这项研究首次表明高锰酸盐可以用作MFC的有效阴极电子受体。

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