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Influence of applied voltage and conductive material in DIET promotion for methane generation
Affiliation:1. Department of Energy Engineering, Future Convergence Technology Research Institute, Gyeongsang National University, Jinju, 52849, Gyeongnam, Republic of Korea;2. Department of Environmental Engineering, Gyeongsang National University, Jinju, 52849, Gyeongnam, Republic of Korea;3. Department of Environmental Engineering, Korea Maritime and Ocean University, Busan, 49112, Republic of Korea;4. Department of Architecture, Sejong University, Seoul, 05006, Republic of Korea
Abstract:The utilization of biological-, electrode- and conductive material-mediated direct interspecies electron transfer (DIET) between exoelectrogenic bacteria and methanogenic archaea for enhancing methane productivity is widely reported in the literature. However, two cardinal questions are still controversial, i.e., which applied voltage value would be more recommended to enhance methane generation? and how the DIET over IIET has the upper hand in enhancing methane productivity? Herein, the influence of different applied voltages to promote biological-, conductive- and electrode-mediated DIET was investigated in MEC-AD reactors with conductive material. Polarized bioelectrodes induced electrode-mediated DIET (eDIET) and biological DIET (bDIET), in addition to cDIET (conductive material-mediated DIET), improved the methane yield to 315.40 mL/g CODr with an applied voltage of 0.9 V. Whereas further increase of applied voltage 1.2 V, lessened methane production efficiency due to high-voltage inhibition and adverse effect on DIET promotion. The anaerobic digestion coupled microbial electrolysis cells with optimal electric potential selectively promotes the DIET through polarized electrodes were confirmed through microbial analysis. As the contribution of DIET increased to 80%, the methane yield increased, and the substrate residue decreased, resulting in a significant improvement in methane production.
Keywords:MEC-AD coupled system  Applied voltage  Conductive material (CM)  Direct interspecies electron transfer (DIET)  Microbial activity  Methane yield
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