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Integrated Microfluidic Flow-Through Microbial Fuel Cells

机译:集成的微流体流通式微生物燃料电池

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This paper reports on a miniaturized microbial fuel cell with a microfluidic flow-through configuration: a porous anolyte chamber is formed by filling a microfluidic chamber with three-dimensional graphene foam as anode, allowing nutritional medium to flow through the chamber to intimately interact with the colonized microbes on the scaffolds of the anode. No nutritional media flow over the anode. This allows sustaining high levels of nutrient utilization, minimizing consumption of nutritional substrates, and reducing response time of electricity generation owing to fast mass transport through pressure-driven flow and rapid diffusion of nutrients within the anode. The device provides a volume power density of 745?μW/cm3 and a surface power density of 89.4?μW/cm2 using Shewanella oneidensis as a model biocatalyst without any optimization of bacterial culture. The medium consumption and the response time of the flow-through device are reduced by 16.4 times and 4.2 times, respectively, compared to the non-flow-through counterpart with its freeway space volume six times the volume of graphene foam anode. The graphene foam enabled microfluidic flow-through approach will allow efficient microbial conversion of carbon-containing bioconvertible substrates to electricity with smaller space, less medium consumption, and shorter start-up time.
机译:本文在具有微流体流动构造的小型微生物燃料电池上报告了一种微流体流动配置:通过用三维石墨烯泡沫作为阳极填充微流体室来形成多孔阳极孔,允许营养介质流过腔室以与之密切地相互作用在阳极的支架上进行殖民化微生物。没有营养媒体流过阳极。这允许维持高水平的营养利用率,最小化营养基材的消耗,并减少由于快速传输通过压力驱动的流量和阳极内营养素的快速扩散而减少发电的响应时间。该装置提供745Ωμw/ cm3的体积功率密度,表面功率密度为89.4μw/ cm2,使用雪兰菜oneDensis作为模型生物催化剂,没有任何细菌培养。与具有高速通道空间体积的非流通式对应物相比,流通器件的中等消耗和响应时间分别减少了16.4倍,4.2倍,其高速通道空间体积六倍石墨烯泡沫阳极的体积。将石墨烯泡沫能够使微流体流过方法将允许有效的微生物转化为具有较小空间,更少的中等消耗和更短的启动时间的电力。

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