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A Bio-Electro-Fenton System Employing the Composite FePc/CNT/SS316 Cathode

机译:采用复合FePc / CNT / SS316阴极的生物电Fenton系统

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摘要

Bio-electro-Fenton microbial fuel cells generate energy through the decomposition of organic matter by microorganisms. The generated electricity drives a Fenton reaction in a cathode chamber, which can be used for the decolorization of dye wastewater. Most of the previous works added expensive platinum catalyst to improve the electrical property of the system. In this research, aligned carbon nanotubes (CNTs) were generated on the surface of SS316 stainless steel by chemical vapor deposition, and an iron phthalocyanine (FePc) catalyst was added to fabricate a compound (FePc/CNT/SS316) that was applied to the cathode electrode of the fuel cell system. This was expected to improve the overall electricity generation efficiency and extent of decolorization of the system. The results showed that the maximum current density of the system with the modified electrode was 3206.30 mA/m2, and the maximum power was 726.55 mW/m2, which were increased by 937 and 2594 times, respectively, compared to the current and power densities of a system where only the SS316 stainless steel electrode was used. In addition, the decolorization of RB5 dye reached 84.6% within 12 h. Measurements of the electrical properties of bio-electro-Fenton microbial fuel cells and dye decolorization experiments with the FePc/CNT/SS316 electrode showed good results.
机译:生物电子芬顿微生物燃料电池通过微生物分解有机物产生能量。产生的电在阴极室内驱动Fenton反应,可用于染料废水的脱色。先前的大多数工作都添加了昂贵的铂催化剂来改善系统的电性能。在这项研究中,通过化学气相沉积法在SS316不锈钢的表面上生成了取向碳纳米管(CNT),并添加了酞菁铁(FePc)催化剂以制备化合物(FePc / CNT / SS316)燃料电池系统的阴极。预期这将改善总体发电效率和系统脱色的程度。结果表明,带修饰电极的系统的最大电流密度为3206.30 mA / m 2 ,最大功率为726.55 mW / m 2 ,有所提高与仅使用SS316不锈钢电极的系统的电流和功率密度相比,分别降低了937倍和2594倍。此外,RB5染料的脱色在12 h内达到84.6%。用FePc / CNT / SS316电极对生物电子Fenton微生物燃料电池的电性能进行测量和染料脱色实验显示出良好的结果。

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