Department of Biological and Ecological Engineering, Oregon State University, 116 Gilmore Hall, Corvallis, Oregon, 97331, USA.
Appl Microbiol Biotechnol. 2018 Sep;102(17):7611-7621. doi: 10.1007/s00253-018-9158-3. Epub 2018 Jun 20.
A possible approach to enhance the performance of microbial electrochemical system such as microbial fuel cells is to increase the conductivity of catalytic biofilms and thereby the direct extracellular electron transfer within the biofilms and from the electrode. In the present study, we evaluated the impact of static low-intensity magnetic field on the anodic biofilms in microbial fuel cells (MFCs). Results demonstrated that the application of a low-intensity magnetic field (105 and 150 mT) can significantly shorten the startup time and enhance the overall performance of single-chamber MFCs in terms of current density (300%) and power density (150%). In situ conductance evaluation indicated that short-term application of magnetic field can increase biofilm conductivity, although the long-term enhancements were likely results of increased conductivity of the anodic biofilms associated with enriched population of Geobacteraceae. The peak-manner response of conductivity over gate potentials and the positive response of mature biofilm conductance to low intensity of magnetic field support the redox conduction model of the conductive exoelectrogenic biofilms.
一种可能的方法来提高微生物电化学系统的性能,例如微生物燃料电池,是增加催化生物膜的导电性,从而在生物膜内和从电极直接进行细胞外电子转移。在本研究中,我们评估了静态低强度磁场对微生物燃料电池(MFC)阳极生物膜的影响。结果表明,施加低强度磁场(105 和 150 mT)可以显著缩短启动时间,并在电流密度(300%)和功率密度(150%)方面显著提高单室 MFC 的整体性能。原位电导评估表明,磁场的短期应用可以增加生物膜的电导率,尽管长期增强可能是由于与 Geobacteraceae 丰富种群相关的阳极生物膜电导率增加所致。电导对门电势的峰值响应方式和成熟生物膜电导对低强度磁场的正向响应支持了导电外电子传递生物膜的氧化还原传导模型。