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Highly efficient sulfonated polybenzimidazole as a proton exchange membrane for microbial fuel cells

机译:高效磺化聚苯并咪唑作为微生物燃料电池的质子交换膜

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Although microbial fuel cells (MFCs) represent a promising bio-energy technology with a dual advantage (i.e., electricity production and waste-water treatment), their low power densities and high installation costs are major impediments. To address these bottlenecks and replace highly expensive Nafion, which is a proton exchange membrane (PEM), the current study focuses for the first time on membranes made from an easily synthesizable and more economical oxy-polybenzimidazole (OPBI) and its sulfonated analogue (S-OPBI) as alternate PEMs in single-chambered MFCs. The S-OPBI membrane exhibits better properties, with high water uptake, ion exchange capacity (IEC) and proton conductivity and a comparatively smaller degree of swelling compared to Nafion. The membrane morphology is characterized by atomic force microscopy, and the bright and dark regions of the S-OPBI membrane reveals the formation of ionic domains in the matrix, forming continuous water nanochannels when doped with water. These water-filled nanochannels are responsible for faster proton conduction in S-OPBI than in Nafion; therefore, the power output in the MFC with S-OPBI as the PEM is higher than in other MFCs. The open circuit voltage (460 mV), current generation (2.27 mA) and power density profile (110 mW/m(2)) as a function of time, as well as the polarization curves, exhibits higher current and power density (87.8 mW/m(2)) with S-OPBI compared to Nafion as the PEM. (C) 2016 Elsevier B.V. All rights reserved.
机译:尽管微生物燃料电池(MFCs)代表着具有双重优势(即发电和废水处理)的有前途的生物能源技术,但它们的低功率密度和高安装成本是主要障碍。为了解决这些瓶颈并替代昂贵的质子交换膜(PEM)昂贵的Nafion,当前的研究首次将重点放在由易于合成且更经济的氧-聚苯并咪唑(OPBI)及其磺化类似物(S -OPBI)作为单腔MFC中的备用PEM。与Nafion相比,S-OPBI膜具有更好的性能,具有较高的吸水率,离子交换容量(IEC)和质子传导性,并且溶胀度相对较小。膜的形貌由原子力显微镜表征,S-OPBI膜的明暗区域揭示了基质中离子域的形成,当掺入水时形成连续的水纳米通道。这些充水的纳米通道在S-OPBI中比Nafion中的质子传导更快。因此,以S-OPBI作为PEM的MFC中的功率输出高于其他MFC。开路电压(460 mV),电流产生(2.27 mA)和功率密度曲线(110 mW / m(2))作为时间的函数以及极化曲线显示出更高的电流和功率密度(87.8 mW) / m(2))与使用Nafion作为PEM进行比较。 (C)2016 Elsevier B.V.保留所有权利。

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