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用碳纳米管负载磷酸钴催化剂提高微生物燃料电池的阳极性能。

Improving the anode performance of microbial fuel cell with carbon nanotubes supported cobalt phosphate catalyst.

作者信息

Yang Qinzheng, Luo Dianliang, Liu Xiaoliang, Guo Tiantian, Zhao Xuedong, Zheng Xinxin, Wang Wenlong

机构信息

School of Bioengineering, Qilu University of Technology, Shandong Academy of Sciences, Jinan 250353, Shandong, P.R. China.

School of Bioengineering, Qilu University of Technology, Shandong Academy of Sciences, Jinan 250353, Shandong, P.R. China.

出版信息

Bioelectrochemistry. 2021 Dec;142:107941. doi: 10.1016/j.bioelechem.2021.107941. Epub 2021 Aug 26.

DOI:10.1016/j.bioelechem.2021.107941
PMID:34487966
Abstract

Microbial fuel cell (MFC) is a sustainable technology that can convert waste to energy by harnessing the power of exoelectrogenic bacteria. However, the poor biocompatibility and low electrocatalytic activities of surface usually cause weak bacterial adhesion and low electron transfer efficiency, which seriously hampers the development of MFCs. Herein, a novel carbon nanotube supported cobalt phosphate (CNT/Co-Pi) electrode is fabricated by assembling CNTs on carbon cloth, followed by the electrodeposition of Co-Pi catalyst. The deposited amorphous Co-Pi thin film contains phosphate and the cobalt ions of multiple oxidation states. The hydrophilic phosphate can promote the adhesion of microorganisms on electrode. The strong conversion ability of multiple states of cobalt offers excellent electrocatalytic activity for the electron transfer across biotic/abiotic interface. Therefore, the highly conductive CNTs substrate, along with the Co-Pi catalyst, provide an effective electron transfer between the electrogenic bacteria and the electrode, which endows MFC high power densities up to 1200 mW m. Our work has demonstrated for the first time that CNT/Co-Pi catalyst can promote the interfacial electron transfer between electrogenic bacteria and electrode, and highlighted the application potentials of Co-Pi as an anode catalyst for the fabrication of high performance MFC anodes.

摘要

微生物燃料电池(MFC)是一种可持续技术,它可以通过利用产电细菌的能量将废物转化为能源。然而,表面较差的生物相容性和较低的电催化活性通常会导致细菌附着力弱和电子转移效率低,这严重阻碍了MFC的发展。在此,通过将碳纳米管组装在碳布上,然后电沉积磷酸钴(Co-Pi)催化剂,制备了一种新型的碳纳米管负载磷酸钴(CNT/Co-Pi)电极。沉积的非晶态Co-Pi薄膜含有磷酸盐和多种氧化态的钴离子。亲水性的磷酸盐可以促进微生物在电极上的附着。多种钴态的强转化能力为生物/非生物界面间的电子转移提供了优异的电催化活性。因此,高导电性的碳纳米管基底与Co-Pi催化剂一起,在产电细菌和电极之间提供了有效的电子转移,这赋予MFC高达1200 mW/m²的高功率密度。我们的工作首次证明了CNT/Co-Pi催化剂可以促进产电细菌与电极之间的界面电子转移,并突出了Co-Pi作为高性能MFC阳极制造的阳极催化剂的应用潜力。

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