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微生物燃料电池中具有双功能的银纳米粒子阴极,用于微生物生长抑制,同时具有相当的氧还原反应活性。

Bifunctional silver nanoparticle cathode in microbial fuel cells for microbial growth inhibition with comparable oxygen reduction reaction activity.

机构信息

School of Environmental Science and Engineering, Gwangju Institute of Science and Technology (GIST), Buk-gu, Gwangju 500-712, Korea.

出版信息

Environ Sci Technol. 2011 Jun 15;45(12):5441-6. doi: 10.1021/es2000326. Epub 2011 May 17.

Abstract

Organic contamination of water bodies in which benthic microbial fuel cells (benthic MFCs) are installed, and organic crossover from the anode to the cathode of membraneless MFCs, is a factor causing oxygen depletion and substrate loss in the cathode due to the growth of heterotrophic aerobic bacteria. This study examines the possible use of silver nanoparticles (AgNPs) as a cathodic catalyst for MFCs suffering from organic contamination and oxygen depletion. Four treated cathodes (AgNPs-coated, Pt/C-coated, Pt/C+AgNPs-coated, and plain graphite cathodes) were prepared and tested under high levels of organics loading. During operation (fed with 50 mM acetate), the AgNPs-coated system showed the highest DO concentration (0.8 mg/L) in the cathode area as well as the highest current (ranging from 0.04 to 0.12 mA). Based on these results, we concluded that (1) the growth of oxygen-consuming heterotrophic microbes could be inhibited by AgNPs, (2) the function of AgNPs as a bacterial growth inhibitor resulted in a greater increase of DO concentration in the cathode than the other tested cathode systems, (3) AgNPs could be applied as a cathode catalyst for oxygen reduction, and as a result (4) the MFC with the AgNPs-coated cathode led to the highest current generation among the tested MFCs.

摘要

安装在底栖微生物燃料电池 (benthic MFCs) 中的水体的有机污染,以及无膜 MFC 中从阳极到阴极的有机交叉,是导致阴极中耗氧和基质损失的一个因素,这是由于异养需氧细菌的生长。本研究考察了将银纳米粒子 (AgNPs) 用作遭受有机污染和缺氧的 MFC 的阴极催化剂的可能性。制备了四个经过处理的阴极(AgNPs 涂层、Pt/C 涂层、Pt/C+AgNPs 涂层和普通石墨阴极),并在高有机负荷下进行了测试。在运行过程中(用 50 mM 醋酸盐进料),AgNPs 涂层系统在阴极区域表现出最高的 DO 浓度(0.8 mg/L)以及最高的电流(范围从 0.04 到 0.12 mA)。基于这些结果,我们得出结论:(1)AgNPs 可以抑制耗氧异养微生物的生长,(2)AgNPs 作为细菌生长抑制剂的功能导致阴极中 DO 浓度的增加大于其他测试的阴极系统,(3)AgNPs 可以用作阴极催化剂用于氧气还原,因此(4)经过 AgNPs 涂层的阴极的 MFC 在测试的 MFC 中产生了最高的电流。

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