Khater Dena Z, El-Khatib K M, Hassan Rabeay Y A
Chemical Engineering & Pilot Plant Department, Engineering Research Division, National Research Centre, 33 El-Bohouth St., Dokki, Giza, Egypt.
Applied Organic Chemistry Department, National Research Centre (NRC), 33 El-Bohouth St., Dokki, Giza, Egypt.
J Genet Eng Biotechnol. 2018 Dec;16(2):369-373. doi: 10.1016/j.jgeb.2018.02.011. Epub 2018 Mar 3.
Construction of efficient performance of microbial fuel cells (MFCs) requires certain practical considerations. In the single chamber microbial fuel cell, there is no border between the anode and the cathode, thus the diffusion of the dissolved oxygen has a contrary effect on the anodic respiration and this leads to the inhibition of the direct electron transfer from the biofilm to the anodic surface. Here, a fed-batch single chambered microbial fuel cells are constructed with different distances 3 and 6 cm (anode- cathode spacing), while keeping the working volume is constant. The performance of each MFC is individually evaluated under the effects of vitamins & minerals with acetate as a fed load. The maximum open circuit potential during testing the 3 and 6 cm microbial fuel cells is about 946 and 791 mV respectively. By decreasing the distance between the anode and the cathode from 6 to 3 cm, the power density is decreased from 108.3 mW m to 24.5 mW m. Thus, the short distance in membrane-less MFC weakened the cathode and inhibited the anodic respiration which affects the overall performance of the MFC efficiency. The system is displayed a maximum potential of 564 and 791 mV in absence & presence of vitamins respectively. Eventually, the overall functions of the acetate single chamber microbial fuel cell can be improved by the addition of vitamins & minerals and increasing the distance between the cathode and the anode.
构建高效性能的微生物燃料电池(MFC)需要一些实际考量。在单室微生物燃料电池中,阳极和阴极之间没有边界,因此溶解氧的扩散对阳极呼吸有相反的影响,这会导致生物膜向阳极表面的直接电子转移受到抑制。在此,构建了不同距离(3厘米和6厘米,阳极 - 阴极间距)的分批补料单室微生物燃料电池,同时保持工作体积恒定。在以乙酸盐作为补料负载的维生素和矿物质的影响下,分别评估每个MFC的性能。测试3厘米和6厘米微生物燃料电池期间的最大开路电位分别约为946毫伏和791毫伏。通过将阳极和阴极之间的距离从6厘米减小到3厘米,功率密度从108.3毫瓦/平方米降至24.5毫瓦/平方米。因此,无膜MFC中的短距离削弱了阴极并抑制了阳极呼吸,从而影响了MFC效率的整体性能。在不存在和存在维生素的情况下,该系统分别显示出564毫伏和791毫伏的最大电位。最终,通过添加维生素和矿物质以及增加阴极与阳极之间的距离,可以改善乙酸盐单室微生物燃料电池的整体功能。