Department of Environmental Engineering, Kyungpook National University, 80 Daehak-ro, Buk-gu, Daegu, 41566, Republic of Korea.
International Center for Materials Nanoarchitectonics, National Institute for Materials Science, 1-1 Namiki, Tsukuba, Ibaraki, 305-0044, Japan.
Chemosphere. 2021 Feb;265:129098. doi: 10.1016/j.chemosphere.2020.129098. Epub 2020 Nov 24.
A highly efficient anode is very crucial for an improved microbial fuel cell (MFC) performance. In this study, a binder-free manganese cobalt oxide (MnCoO@CF) anode was synthesized using a conventional carbon felt (CF) by a facile hydrothermal method. A large electrochemically active and rough electrode surface area of MnCoO@CF anode improved the substrate fluxes and microbial adhesion/growth. Furthermore, the electrochemical tests on the synthesized anode confirmed the superior bioelectrochemical activity, reduced ion transfer resistance, and excellent capacitance. This resulted in an improved power density (945 mW/m), which was 3.8 times higher than that of CF anode. The variable valence state, high stability and biocompatibility of MnCoO@CF resulted in continuous current density performance for five MFC cycles. High-throughput biofilm analysis revealed the enrichment of electricity producing phylum of Proteobacteria and Bacteroidetes (∼90.0%), which signified that the modified MnCoO anode accelerated the enrichment of electro-active microbes.
对于提高微生物燃料电池(MFC)的性能而言,高效的阳极是非常关键的。在这项研究中,采用一种简便的水热法,在普通的碳纤维毡(CF)上合成了一种无粘结剂的锰钴氧化物(MnCoO@CF)阳极。MnCoO@CF 阳极具有较大的电化学活性和粗糙的电极表面积,这提高了基质通量和微生物的附着/生长。此外,对合成阳极的电化学测试证实了其具有优越的生物电化学活性、降低的离子转移电阻和优异的电容。这使得功率密度(945 mW/m)得到了提高,比 CF 阳极提高了 3.8 倍。MnCoO@CF 的变价态、高稳定性和生物相容性使得 MFC 连续五个周期的电流密度性能得以持续。高通量生物膜分析显示,产生电的优势菌门为变形菌门和拟杆菌门(约 90.0%),这表明改性的 MnCoO 阳极加速了电活性微生物的富集。