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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Fluidized granular activated carbon electrode for efficient microbial electrosynthesis of acetate from carbon dioxide
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Fluidized granular activated carbon electrode for efficient microbial electrosynthesis of acetate from carbon dioxide

机译:流化颗粒状活性炭电极,用于高效的醋酸二氧化碳微生物电气合成

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摘要

The electricity-driven bioreduction of carbon dioxide to multi-carbon organic compounds, particularly acetate, has been achieved in microbial electrosynthesis (MES). MES performance can be limited by the amount of cathode surface area available for biofilm formation and slow substrate mass transfer. Here, a fluidized three-dimensional electrode, containing granular activated carbon (GAC) particles, was constructed via MES. The volumetric acetate production rate increased by 2.8 times through MES with 16 g L-1 GAC (0.14 g L-1 d(-1)) compared with that of the control (no GAC), and the final acetate concentration reached 3.92 g L-1 within 24 days. Electrochemical, scanning electron microscopy, and microbial community analyses suggested that GAC might improve the performance of MES by accelerating direct and indirect (via H-2) electron transfer because GAC could provide a high electrode surface and a favorable mass transport. This study attempted to improve the efficiency of MES and presented promising opportunities for MES scale-up.
机译:在微生物电气合成(MES)中已经实现了二氧化碳的电力驱动二氧化碳,特别是乙酸盐。 MES性能可以受到生物膜形成和慢衬底传质的阴极表面积的限制。这里,通过MES构建含有粒状活性炭(GAC)颗粒的流化三维电极。与对照(无GAC)相比,体积醋酸盐生产率通过16g L-1 GAC(0.14g L-1 D(-1))的MES增加2.8次,最终乙酸浓度达到3.92g l -1 24天内。电化学,扫描电子显微镜和微生物群落分析表明,由于GAC可以提供高电极表面和有利的大规模运输,因此通过加速直接和间接(通过H-2)电子转移,GAC可以提高ME的性能。本研究试图提高MES的效率,并提出了对MES扩大的有希望的机会。

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