Aelterman Peter, Freguia Stefano, Keller Jurg, Verstraete Willy, Rabaey Korneel
Laboratory of Microbial Ecology and Technology (LabMET), Ghent University, Coupure Links 653, B-9000, Ghent, Belgium.
Appl Microbiol Biotechnol. 2008 Mar;78(3):409-18. doi: 10.1007/s00253-007-1327-8. Epub 2008 Jan 10.
The anode potential in microbial fuel cells controls both the theoretical energy gain for the microorganisms as the output of electrical energy. We operated three reactors fed with acetate continuously at a poised anode potential of 0 (R0), -200 (R(-200)) and -400 (R(-400)) mV versus Ag/AgCl and investigated the resulting bacterial activity. The anode potential had no influence on the start-up time of the three reactors. During a 31-day period, R(-200) produced 15% more charge compared to R0 and R(-400). In addition, R(-200) had the highest maximal power density (up to 199 W m(-3) total anode compartment during polarization) but the three reactors evolved to the same power density at the end of the experimental period. During polarization, only the current of R(-400) levelled off at an anode potential of -300 mV versus Ag/AgCl. The maximum respiration rate of the bacteria during batch tests was also considerably lower for R(-400). The specific biomass activity however, was the highest for R(-400) (6.93 g chemical oxygen demand g(-1) biomass-volatile suspended solids (VSS) d(-1) on day 14). This lowered during the course of the experiment due to an increase of the biomass concentration to an average level of 578+/-106 mg biomass-VSS L(-1) graphite granules for the three reactors. This research indicated that an optimal anode potential of -200 mV versus Ag/AgCl exists, regulating the activity and growth of bacteria to sustain an enhanced current and power generation.
微生物燃料电池中的阳极电位既控制着微生物产生电能的理论能量增益,也控制着电能输出。我们操作了三个连续进料醋酸盐的反应器,相对于Ag/AgCl,其阳极电位分别保持在0(R0)、-200(R(-200))和-400(R(-400))mV,并研究了由此产生的细菌活性。阳极电位对三个反应器的启动时间没有影响。在31天的时间里,与R0和R(-400)相比,R(-200)产生的电荷多15%。此外,R(-200)具有最高的最大功率密度(极化期间整个阳极室高达199 W m(-3)),但在实验期结束时,三个反应器的功率密度趋于相同。在极化过程中,只有R(-400)的电流在相对于Ag/AgCl为-300 mV的阳极电位下趋于平稳。在分批试验中,R(-400)的细菌最大呼吸速率也显著较低。然而,比生物量活性在R(-400)中最高(在第14天为6.93 g化学需氧量g(-1)生物量-挥发性悬浮固体(VSS)d(-1))。在实验过程中,由于三个反应器中生物量浓度增加到平均水平578±106 mg生物量-VSS L(-1)石墨颗粒,该值降低。这项研究表明,相对于Ag/AgCl存在一个最佳阳极电位-200 mV,它调节细菌的活性和生长,以维持增强的电流和发电。