首页> 外文会议>ASME international fuel cell science, engineering, and technology conference >USING SHEWANELLA ONEIDENSIS MR1 AS A BIOCATALYST IN A MICROSCALE MICROBIAL FUEL CELL
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USING SHEWANELLA ONEIDENSIS MR1 AS A BIOCATALYST IN A MICROSCALE MICROBIAL FUEL CELL

机译:使用Shewanella Inidensis MR1​​作为微贫微生物燃料电池中的生物催化剂

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Microbial fuel cell (MFC) technology is a promising area in the field of renewable energy because of their capability to use the energy contained in wastewater, which has been previously an untapped source of power. Microscale MFCs are desirable for their small footprints, relatively high power density, fast startup, and environmentally-friendly process. Microbial fuel cells employ microorganisms as the biocatalysts instead of metal catalysts, which are widely applied in conventional fuel cells. MFCs are capable of generating electricity as long as nutrition is provided. Miniature MFCs have faster power generation recovery than macroscale MFCs. Additionally, since power generation density is affected by the surface-to-volume ratio, miniature MFCs can facilitate higher power density. We have designed and fabricated a microscale microbial fuel cell with a volume of 4 μL in a polydimethylsiloxane (PDMS) chamber. The anode and cathode chambers were separated by a proton exchange membrane. Carbon cloth was used for both the anode and the cathode. Shewanella Oneidensis MR-I was chosen to be the electrogenic bacteria and was inoculated into the anode chamber. We employed Ferricyanide as the catholyte and introduced it into the cathode chamber with a constant flow rate of approximately 50 μL/hr. We used trypticase soy broth as the bacterial nutrition and added it into the anode chamber approximately every 15 hours once current dropped to base current. Using our miniature MFC, we were able to generate a maximum current of 4.62 μA.
机译:微生物燃料电池(MFC)技术是可再生能源领域的有希望的区域,因为它们能够使用废水中包含的能量,这已经是先前未开发的电力来源。微观MFCS对于它们的小占地面积,相对较高的功率密度,快速启动和环保过程来说是可取的。微生物燃料电池用微生物作为生物催化剂代替金属催化剂,其广泛应用于常规燃料电池中。只要提供营养即可,MFC都能够发电。微型MFC具有比Macroscale MFC更快的发电恢复。另外,由于发电密度受到体积比率的影响,微型MFC可以促进更高的功率密度。我们已经在聚二甲基硅氧烷(PDMS)室中设计并制造了体积为4μL的微观微生物燃料电池。阳极和阴极室通过质子交换膜分离。碳布用于阳极和阴极。 Shewanella Inidensis MR-I被选择为电生细菌,并接种到阳极室中。我们使用铁氰化物作为阴极电解液,并将其引入阴极室,其流速约为50μL/ hr。我们将胰蛋白酶大豆肉汤作为细菌营养,并将其大约每15小时加入阳极室中,一旦电流下降到碱基电流。使用我们的微型MFC,我们能够产生最大电流为4.62μA。

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