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Enhancing the performance of microbial fuel cells (MFCs) with nitrophenyl modified carbon nanotubes-based anodes

机译:使用基于硝基苯基修饰的碳纳米管的阳极提高微生物燃料电池(MFCs)的性能

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Modification of carbon based-nanomaterials has been proven to be efficient for improving the MFCs performance, since the anode material significantly impacts the biofilm formation and the electron transfer between the microorganism and the electron acceptor. Surface treatment or functionalization is frequently employed to enhance the chemical reactivity and modify the hydrophobic surface of carbon nanotubes (CNTs).This work aims to explore the modification of CNTs with nitrophenyl groups for the improvement of the performance of MFC through anode modifications. Two procedures, involving 4-nitroaniline or 4-nitrobenzenediazonium tetrafluoroborate, were used for the chemical modification of CNTs. The X-ray photoelectron spectroscopy (XPS), Raman spectroscopy and cyclic voltammetry were used for the characterizations of nitrophenyl modified CNTs. The maximum power density was obtained when 4-nitrobenzenediazonium tetrafluoroborate was used for the modification of the surface of CNTs. The introducing of nitrogen functionality on the anode surface and the control of the nitrogen content provide considerable encouragements for enhancing the MFCs performance through anode modifications.
机译:碳基纳米材料的改性已被证明可有效改善MFC的性能,因为阳极材料会显着影响生物膜的形成以及微生物与电子受体之间的电子转移。经常采用表面处理或功能化来增强化学反应性并修饰碳纳米管(CNT)的疏水性表面。这项工作旨在探索用硝基苯基对CNT进行修饰以通过阳极修饰来改善MFC性能的方法。涉及4-硝基苯胺或4-硝基苯重氮四氟硼酸酯的两种方法用于CNT的化学改性。 X射线光电子能谱(XPS),拉曼光谱和循环伏安法用于表征硝基苯基修饰的碳纳米管。当将4-硝基苯重氮四氟硼酸盐用于CNT的表面改性时,获得了最大功率密度。将氮官能团引入阳极表面并控制氮含量为通过阳极改性增强MFC的性能提供了极大的鼓励。

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