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Aspergillus oryzae – Saccharomyces cerevisiae Consortium Allows Bio-Hybrid Fuel Cell to Run on Complex Carbohydrates

机译:米曲霉–酿酒酵母协会允许生物混合燃料电池在复杂的碳水化合物上运行

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Consortia of Aspergillus oryzae and Saccharomyces cerevisiae are examined for their abilities to turn complex carbohydrates into ethanol. To understand the interactions between microorganisms in consortia, Fourier-transform infrared spectroscopy is used to follow the concentrations of various metabolites such as sugars (e.g., glucose, maltose), longer chain carbohydrates, and ethanol to optimize consortia conditions for the production of ethanol. It is shown that with proper design A. oryzae can digest food waste simulants into soluble sugars that S. cerevisiae can ferment into ethanol. Depending on the substrate and conditions used, concentrations of 13% ethanol were achieved in 10 days. It is further shown that a direct alcohol fuel cell (FC) can be coupled with these A. oryzae -enabled S. cerevisiae fermentations using a reverse osmosis membrane. This “bio-hybrid FC” continually extracted ethanol from an ongoing consortium, enhancing ethanol production and allowing the bio-hybrid FC to run for at least one week. Obtained bio-hybrid FC currents were comparable to those from pure ethanol—water mixtures, using the same FC. The A. oryzae–S. cerevisiae consortium, coupled to a bio-hybrid FC, converted food waste simulants into electricity without any pre- or post-processing.
机译:检查米曲霉和酿酒酵母的联合体将复杂碳水化合物转化为乙醇的能力。为了了解菌群中微生物之间的相互作用,使用傅立叶变换红外光谱法来跟踪各种代谢产物的浓度,例如糖(例如葡萄糖,麦芽糖),更长链的碳水化合物和乙醇,以优化菌群条件以生产乙醇。结果表明,通过适当的设计,米曲霉可以将食物残渣模拟物消化成可溶性糖,而酿酒酵母可以将其发酵成乙醇。根据所用的底物和条件,在10天内可达到13%的乙醇浓度。进一步显示,可以使用反渗透膜将直接酒精燃料电池(FC)与这些米曲霉使能的酿酒酵母发酵结合。这种“生物杂交FC”不断从一个进行中的财团中提取乙醇,从而提高了乙醇产量,并使该生物杂交FC运行了至少一周。使用相同的燃料电池,获得的生物混合燃料电池电流与纯乙醇-水混合物的电流相当。米曲霉酿酒业协会与生物混合燃料电池相结合,无需进行任何前处理或后处理即可将食物残渣模拟物转化为电能。

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