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Self-supported microbial carbon aerogel bioelectrocatalytic anode promoting extracellular electron transfer for efficient hydrogen evolution

机译:自支撑微生物碳气体生物电催化阳极促进细胞外电子转移以获得高效氢进化

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摘要

Hydrogen production by microbial electrolysis cells (MECs) is an attractive and promising technology for sustainable energy. The bioelectrocatalytic activity of bioanode plays an essential role in improving the supply of electrons to cathode. Herein, a self-supported three-dimensional (3D) porous carbon aerogel (CA) bioanode was successfully applied in a MEC system for efficient hydrogen production. The 3D porous structure of CA greatly increased the bacterial incubation, then favored the extracellular electron transfer (EET) owing to its high specific surface area, excellent electrical conductivity and enhanced interaction with microbial. As a result, the hydrogen production of Bio-CAjjPt (0.37 mmol cm(-2) h(-1)) was 5 times higher than that of bio-carbon fiber (Bio-CF)parallel to Pt (0.007 mmol cm(-2).h(-1)) at the bias voltage of 0.3 V. Such a MEC with self-supported 3D porous microbial CA bioanode as a promising biotechnology will be further investigated for pollutant degradation and hydrogen production. (c) 2019 Published by Elsevier Ltd.
机译:微生物电解细胞(MEC)的氢气产生是可持续能源的有吸引力和有希望的技术。生物耦合的生物电催化活性在改善阴极供应时起着重要作用。这里,成功地应用了一种自支撑的三维(3D)多孔碳气体(CA)生物探测在MEC系统中以获得有效的氢气产生。 Ca的3D多孔结构大大增加了细菌孵育,然后归功于其高比表面积,优异的导电性和与微生物相互作用的优异的相互作用均受促使细胞外电子转移(EET)。结果,Bio-cajjpt的氢气产生(0.37mmol cm(-2)h(-1))比平行于pt的生物碳纤维(Bio-cf)的5倍(0.007mmol cm( - 2).H(-1))在0.3V的偏置电压下。将进一步研究具有自支撑的3D多孔微生物Ca Bioanode作为有前途的生物技术的MEC以进行污染物降解和氢气产生。 (c)2019年由elestvier有限公司发布

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