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Effects of Fe° and Ni° nanoparticles on hydrogen production from cotton stalk hydrolysate using Klebsiella sp. WL1316: Evaluation of size and concentration of the nanoparticles

机译:Fe和Ni°纳米粒子对使用克雷伯菌(Klebsiella sp。)的棉秆水解产物产生氢的影响。 WL1316:评估纳米粒子的大小和浓度

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摘要

Fe-0 and Ni-0 nanoparticles (NPs) of certain size were synthesized and added to the hydrogen production system from cotton stalk hydrolysate using Klebsiella sp. WL1316. Fe-0 and Ni-0 NPs with a size of 50 nm at all concentrations effectively improve hydrogen production during mid to late fermentation stages; particularly, the highest daily hydrogen production obtained following treatment with 50 nm Fe-0 NPs at 30 mg/L fermented for 96 h significantly increased by 61% comparing to the control treatment. The reducing sugar consumption in cotton stalk hydrolysate and Delta OD600 could be improved to some extent by Fe-0 and Ni-0 NPs supplementation. Addition of Fe-0 or Ni-0 NPs of 50 nm at a concentration of 30 mg/L resulted in enhanced cumulative hydrogen production with improvement of hydrogen yield reached higher than 20%, and the values of Y(H-2/S) were all higher than 90 mLig substrate, reflecting good hydrogen production and substrate consumption. The analysis of the main soluble metabolites profile revealed that supplementation with Fe-0 and Ni-0 NPs of suitable size and concentration may decrease the metabolic flux in the competitive branch of hydrogen production and increase the metabolic flux of the key node that leads to hydrogen generation, thus promoting biohydrogen synthesis. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:合成了一定尺寸的Fe-0和Ni-0纳米粒子(NPs),并使用克雷伯氏菌(Klebsiella sp。)将其从棉秆水解产物中添加到制氢系统中。 WL1316。所有浓度的Fe-0和Ni-0 NP尺寸均为50 nm,可有效提高发酵中期至后期的产氢量;特别地,与对照处理相比,以50 mg Fe-0 NP以30 mg / L发酵96 h处理后获得的每日最高产氢量显着增加61%。补充Fe-0和Ni-0 NPs可以在一定程度上改善棉秆水解产物和Delta OD600中糖的减少消耗。以30 mg / L的浓度添加50 nm的Fe-0或Ni-0 NPs可以提高累积氢气产量,并且氢气产率提高到20%以上,并且Y(H-2 / S)值均高于90 mLig底物,反映出良好的氢气产生和底物消耗。对主要可溶性代谢物谱的分析表明,添加适当大小和浓度的Fe-0和Ni-0 NPs可能会降低制氢竞争分支中的代谢通量,并增加导致氢的关键节点的代谢通量产生,从而促进生物氢的合成。 (C)2020 Hydrogen Energy Publications LLC。由Elsevier Ltd.出版。保留所有权利。

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