Effects of various parameters on bioenergy generation in microbial fuel cell

An, Parkash
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引用次数: 1

Abstract

Microbial Fuel Cells (MFCs) are a sustainable energy technology with minimal carbon footprint, which is promising for wastewater remediation and generation of useful amounts of electricity.1 Microbial Fuel Cells (MFCs) are bio-electrochemical devices whose constituent electro-active bacteria harvest electrons and protons by oxidizing organic matter. Electrons travel through the anode to the cathode electrode via an external load, and cat ions diffuse through a cat ion exchange membrane that separates the anode with the cathode. Atmospheric oxygen in the cathode reacts with the incoming electrons and protons to produce water2 Miniaturization of MFCs has been reported in the literature as a more efficient way of generating electricity3 and can be utilized for powering small devices.4 Microbial fuel cells (MFCs) can convert organic matter into electricity. In contrast to conventional fuel cells, MFCs have particular advantages such as high energy-conversion efficiency and mild reaction conditions (e.g., ambient temperature, normal pressure, and neutral pH). Moreover, MFCs can convert numerous kinds of organic matters into electricity. These organic compounds include simple carbohydrates, such as glucose,5 acetate and butyrate,6 and complex organic compounds such as those in swine wastewaters,7 domestic wastewater,8 and manure sludge waste generated a maximum electrical current of roughly 60 lA and several hundred of millivolts by connecting graphite foil electrodes in an aerated aerobic zone to those in an anaerobic sludge zone. The feasibility of directly converting sewage sludge into electricity via an MFC was in part demonstrated.
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不同参数对微生物燃料电池生物能源产生的影响
微生物燃料电池(MFCs)是一种碳足迹最小的可持续能源技术,在废水处理和产生有用的电量方面很有前景微生物燃料电池(mfc)是一种生物电化学装置,其组成的电活性细菌通过氧化有机物来获取电子和质子。电子通过外部负载穿过阳极到达阴极电极,而离子则通过分离阳极和阴极的离子交换膜扩散。阴极中的大气氧与进入的电子和质子发生反应产生水。文献报道,mfc的小型化是一种更有效的发电方式,可用于为小型设备供电微生物燃料电池(MFCs)可以将有机物转化为电能。与传统燃料电池相比,mfc具有高能量转换效率和温和的反应条件(如环境温度、常压和中性pH值)等特殊优势。此外,mfc可以将多种有机物转化为电能。这些有机化合物包括简单的碳水化合物,如葡萄糖,5醋酸盐和丁酸盐,6和复杂的有机化合物,如猪废水,7生活废水,8和粪肥污泥废物中的有机化合物,通过将曝气好氧区石墨箔电极与厌氧污泥区石墨箔电极连接,产生大约60 lA和几百毫伏的最大电流。部分论证了通过MFC直接将污水污泥转化为电能的可行性。
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