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Facile preparation of binder-free NiO/MnO_2-carbon felt anode to enhance electricity generation and dye wastewater degradation performances of microbial fuel cell

机译:简便制备无粘结剂NiO / MnO_2-碳毡阳极提高微生物燃料电池的发电和染料废水降解性能

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Binder-free NiO/MnO2-carbon felt electrode is prepared with a facile two-step hydrothermal method. The NiO self-grown on the carbon felt is used as the skeleton structure to support the in-situ growth of MnO2. Both the core and shell materials are excellent pseudocapacitance materials. The compositing of such pseudocapacitance metal oxides can produce synergistic effects, so that the modified electrode has a high capacitance. NiO/MnO2-carbon felt electrode also possesses a high specific surface area, super hydrophilicity and good biocompatibility, which are conducive to the enrichment of typical exoelectrogen Geobacter. As the anode, NiO/MnO2-carbon felt electrode can effectively improve the electricity generation and methyl orange (MO) wastewater degradation performances of microbial fuel cell (MFC). The highest output voltage and the maximum power density of MFC with NiO/MnO2-carbon felt anode are respectively 652 mV and 628 mW m(-2), which are much higher than those of MFC with MnO2-carbon felt anode (613 mV, 544 mW m(-2)), NiO carbon felt anode (504 mV, 197 mW M -2 ) and unmodified carbon felt anode (423 mV, 162 mW m(-2)). The decolourization efficiency and the chemical oxygen demand (COD) removal rate of MO for MFC with NiO/MnO2-carbon felt anode are respectively 92.5% and 58.2% at 48 h. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:采用简便的两步水热法制备无粘结剂的NiO / MnO2-碳毡电极。自生在碳毡上的NiO被用作骨架结构以支持MnO2的原位生长。核和壳材料都是优异的伪电容材料。这种伪电容金属氧化物的复合可以产生协同作用,从而使改性电极具有高电容。 NiO / MnO2-碳毡电极还具有较高的比表面积,超强的亲水性和良好的生物相容性,有利于典型的外生电土杆菌的富集。 NiO / MnO2-碳毡电极作为阳极可有效改善微生物燃料电池(MFC)的发电和甲基橙(MO)废水降解性能。使用NiO / MnO2-碳毡阳极的MFC的最高输出电压和最大功率密度分别为652 mV和628 mW m(-2),远高于使用MnO2-碳毡阳极的MFC(613 mV, 544 mW m(-2)),NiO碳毡阳极(504 mV,197 mW M -2)和未改性的碳毡阳极(423 mV,162 mW m(-2))。 NiO / MnO2-碳毡阳极的MFC在48 h时,MO的脱色效率和MO的化学需氧量去除率分别为92.5%和58.2%。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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