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纳米结构氧化锰作为阴极催化剂,用于增强以合成废水为食的微生物燃料电池中的氧气还原。

Nano-structured manganese oxide as a cathodic catalyst for enhanced oxygen reduction in a microbial fuel cell fed with a synthetic wastewater.

机构信息

Department of Chemistry, University of Science & Technology of China, Hefei 230026, China.

出版信息

Water Res. 2010 Oct;44(18):5298-305. doi: 10.1016/j.watres.2010.06.065. Epub 2010 Jul 17.

DOI:10.1016/j.watres.2010.06.065
PMID:20638701
Abstract

Microbial fuel cells (MFCs) provide new opportunities for the simultaneous wastewater treatment and electricity generation. Enhanced oxygen reduction capacity of cost-effective metal-based catalysts in an air cathode is essential for the scale-up and commercialization of MFCs in the field of wastewater treatment. We demonstrated that a nano-structured MnO(x) material, prepared by an electrochemically deposition method, could be an effective catalyst for oxygen reduction in an MFC to generate electricity with the maximum power density of 772.8 mW/m(3) and remove organics when the MFC was fed with an acetate-laden synthetic wastewater. The nano-structured MnO(x) with the controllable size and morphology could be readily obtained with the electrochemical deposition method. Both morphology and manganese oxidation state of the nano-scale catalyst were largely dependent on the electrochemical preparation process, and they governed its catalytic activity and the cathodic oxygen reduction performance of the MFC accordingly. Furthermore, cyclic voltammetry (CV) performed on each nano-structured material suggests that the MnO(x) nanorods had an electrochemical activity towards oxygen reduction reaction via a four-electron pathway in a neutral pH solution. This work provides useful information on the facile preparation of cost-effective cathodic catalysts in a controllable way for the single-chamber air-cathode MFC for wastewater treatment.

摘要

微生物燃料电池 (MFC) 为同时进行废水处理和发电提供了新的机会。在空气阴极中,具有成本效益的金属基催化剂的增强氧气还原能力对于 MFC 在废水处理领域的规模化和商业化至关重要。我们证明了一种通过电化学沉积方法制备的纳米结构 MnO(x) 材料可以作为 MFC 中氧气还原的有效催化剂,以 772.8 mW/m(3) 的最大功率密度发电,并在 MFC 中处理含有醋酸盐的合成废水时去除有机物。具有可控尺寸和形态的纳米结构 MnO(x) 可以通过电化学沉积方法轻易获得。纳米级催化剂的形态和锰氧化态在很大程度上取决于电化学制备过程,因此它们决定了其催化活性和 MFC 的阴极氧气还原性能。此外,对每种纳米结构材料进行的循环伏安法 (CV) 表明,MnO(x) 纳米棒在中性 pH 溶液中通过四电子途径对氧气还原反应具有电化学活性。这项工作为在单室空气阴极 MFC 中以可控方式制备具有成本效益的阴极催化剂提供了有用的信息,用于废水处理。

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