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一种光增强的 α-FeOOH 纳米线/聚苯胺阳极,可提高微生物燃料电池的发电性能。

A light-enhanced α-FeOOH nanowires/polyaniline anode for improved electricity generation performance in microbial fuel cells.

机构信息

College of Environment and Ecology, Chongqing University, Chongqing, China; Key Laboratory of the Three Gorge Reservoir Region's Eco-environment, Ministry of Education, Chongqing, China.

College of Environment and Ecology, Chongqing University, Chongqing, China.

出版信息

Chemosphere. 2022 Jun;296:133994. doi: 10.1016/j.chemosphere.2022.133994. Epub 2022 Feb 14.

Abstract

Low power density and poor anode performance seriously limit the potential of practical application of microbial fuel cell (MFC). Utilizing solar energy by developing photoanode is one of the effective pathways to improve the performance of MFC. Here solar energy harvesting was integrated into MFC to achieved the comprehensive utilization of multiple energy sources. A hybrid MFC photoanode (α-FeOOH-NWs/PANI anode) was constructed by loading polyaniline (PANI) and α-FeOOH nanowires (α-FeOOH-NWs) on carbon paper through electro-polymerization synthesis method. Compared with clean carbon paper, nanowires and PANI increased the surface roughness of the electrode, which facilitated the biofilm formation. The electrochemical and photoelectric analysis demonstrated that PANI introduced new electroactive groups and reduced the charge transfer resistance, exhibiting excellent electrochemical and photoelectric activites. The MFC with the α-FeOOH-NWs/PANI photoanode had higher voltage output and power density under light illumination, with the power density of 1.95 W/m under light, which was 1.4 times higher than that without light. The hybrid α-FeOOH-NWs/PANI photoanode enhanced the separation efficiency of photogenerated electron-hole pairs, thereby improving the photoelectric response capability and generating a high photocurrent. Our research provided a new concept for the combination of solar energy harvesting and MFCs, yielding an overall enhancement of electricity eneration performance in MFC.

摘要

低能量密度和较差的阳极性能严重限制了微生物燃料电池 (MFC) 的实际应用潜力。通过开发光电阳极利用太阳能是提高 MFC 性能的有效途径之一。在这里,太阳能收集与 MFC 集成,实现了多种能源的综合利用。通过电聚合合成方法,在碳纸上负载聚苯胺 (PANI) 和α-FeOOH 纳米线 (α-FeOOH-NWs) 构建了混合 MFC 光电阳极 (α-FeOOH-NWs/PANI 阳极)。与清洁的碳纸相比,纳米线和 PANI 增加了电极的表面粗糙度,有利于生物膜的形成。电化学和光电分析表明,PANI 引入了新的电活性基团并降低了电荷转移电阻,表现出优异的电化学和光电活性。带有α-FeOOH-NWs/PANI 光电阳极的 MFC 在光照下具有更高的电压输出和功率密度,在光照下的功率密度为 1.95 W/m,是无光照射时的 1.4 倍。混合的α-FeOOH-NWs/PANI 光电阳极增强了光生电子-空穴对的分离效率,从而提高了光电响应能力并产生了高的光电流。我们的研究为太阳能收集与 MFC 的结合提供了新的概念,从而整体上提高了 MFC 的发电性能。

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