首页> 外文期刊>Electrochimica Acta >Oxygen reduction reaction (ORR) electrocatalysts in constructed wetland-microbial fuel cells: Effect of different carbon-based catalyst biocathode during bioelectricity production
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Oxygen reduction reaction (ORR) electrocatalysts in constructed wetland-microbial fuel cells: Effect of different carbon-based catalyst biocathode during bioelectricity production

机译:结构湿地 - 微生物燃料电池中的氧还原反应(ORR)电催化剂:不同碳基催化剂生物病变在生物电性生产中的影响

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The oxygen reduction reaction (ORR) catalytic activities that occur in constructed wetland-microbial fuel cells (CW-MFCs) during bioelectricity production through exudates released from macrophyte rhizosphere using different alternative carbon-based catalysts combined with biocathode were studied in this work. A catalytic layer of graphene/titanium dioxide (G/TiO2), graphene/nitrogen (G/N), and carbon/platinum (C/Pt) was spray-coated on the carbon cathode as electrocatalysts for the CW-MFC1, CW-MFC2, and CW-MFC3, respectively. Then, the development of the biofilm took place on the catalytic layer during the operation of CW-MFCs generating a biohybrid catalyst (carbon-based catalyst biocathodes). The electrokinetic parameters showed that the ORR of the different biohybrid catalysts and biocathode without carbon-based catalyst occurred through the direct reduction mechanism, which involves a transfer of four-electrons towards the formation of water. Tafel slopes of 110-184 mV/dec, charge transfer coefficients (alpha) <= 0.5, and exchange current density (i(o)) of 2.0-4.9 x 10(-2) mA/cm(2) were obtained. These parameters demonstrated that the electrocatalysts increased the electrocatalytic activities of the ORR. The increase of the active sites on the biocathodes led to an increase in the bioelectricity production. The highest bioelectrochemical performance in the CW-MFCs was obtained with the G/TiO2, and C/Pt electrocatalysts with maximum voltages of 490 and 454 mV and power densities of 99.2 and 82.4 mW/m(2), respectively. The biohybrid catalysts showed an increase of more than 100% in bioelectricity production compared with biocathode CW-MFCs without catalytic layer. Biolectricity production was directly related to the generation of sugars released from macrophyte rhizosphere. (C) 2021 Elsevier Ltd. All rights reserved.
机译:本文研究了人工湿地微生物燃料电池(CW-MFC)在利用不同替代碳基催化剂和生物阴极结合从大型植物根际释放的分泌物生产生物电过程中发生的氧还原反应(ORR)催化活性。在碳阴极上喷涂石墨烯/二氧化钛(G/TiO2)、石墨烯/氮(G/N)和碳/铂(C/Pt)催化层,分别作为CW-MFC1、CW-MFC2和CW-MFC3的电催化剂。然后,在CW MFC产生生物混合催化剂(碳基催化剂生物阴极)的操作过程中,生物膜在催化层上形成。电动参数表明,不同的生物杂化催化剂和不含碳基催化剂的生物阴极的ORR通过直接还原机制发生,该机制涉及四个电子向水的形成转移。获得了110-184mV/dec的塔菲尔斜率,电荷转移系数(α)<=0.5,以及2.0-4.9x10(-2)mA/cm(2)的交换电流密度(i(o))。这些参数表明,电催化剂提高了ORR的电催化活性。生物阴极上活性位点的增加导致生物电产量的增加。在CW MFC中,G/TiO2和C/Pt电催化剂的生物电化学性能最高,最大电压分别为490和454 mV,功率密度分别为99.2和82.4 mW/m(2)。与没有催化层的生物阴极CW MFC相比,生物杂化催化剂的生物电产量提高了100%以上。生物电的产生与大型植物根际释放的糖的产生直接相关。(c)2021爱思唯尔有限公司保留所有权利。

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