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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >The performance and mechanism of modified activated carbon air cathode by non-stoichiometric nano Fe3O4 in the microbial fuel cell
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The performance and mechanism of modified activated carbon air cathode by non-stoichiometric nano Fe3O4 in the microbial fuel cell

机译:非化学计量的纳米Fe3O4在微生物燃料电池中改性活性炭空气阴极的性能及机理

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摘要

Cathodic catalyst is one of the key materials in microbial fuel cell (MFC). The addition of non-stoichiometric nano Fe3O4 in activated carbon (NSFe3O4/AC) air cathode was beneficial to boosting the charge transfer of the cathode accompanying with the enhancement of power performance in MFC. The air cathode modified by NSFe3O4 (5%, Wt%) increased the maximum power density by 83.3% from 780 mW/m(2) to 1430 mW/m(2) compared with bare air cathode. The modified cathodes showed enhanced electrochemical properties and appeared the maximum exchange current density of 18.71 x 10(-4) A/cm(2) for oxygen reduction reaction. The mechanism of oxygen reduction for the NSFe3O4/AC catalyst was a 4-electron pathway. The oxygen vacancy of the NSFe3O4 played a crucial role in electrochemical catalytic activity. The great catalytic performance made NSFe3O4 have a promising outlook applied in MFC. (C) 2015 Elsevier B.V. All rights reserved.
机译:阴极催化剂是微生物燃料电池(MFC)的关键材料之一。在活性炭(NSFe3O4 / AC)空气阴极中添加非化学计量的纳米Fe3O4有助于促进阴极的电荷转移,同时增强MFC的功率性能。与裸露空气阴极相比,由NSFe3O4(5%,Wt%)改性的空气阴极将最大功率密度从780 mW / m(2)增加到1430 mW / m(2),增加了83.3%。改性的阴极显示增强的电化学性能,并出现最大的交换电流密度为18.71 x 10(-4)A / cm(2)的氧还原反应。 NSFe3O4 / AC催化剂的氧还原机理为4电子途径。 NSFe3O4的氧空位在电化学催化活性中起关键作用。出色的催化性能使NSFe3O4在MFC中具有广阔的应用前景。 (C)2015 Elsevier B.V.保留所有权利。

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