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用生物炭改良的生物联合体从葡萄糖中暗发酵生产挥发性脂肪酸。

Dark fermentation production of volatile fatty acids from glucose with biochar amended biological consortium.

机构信息

Department of Chemical Engineering, National Taiwan University, Taipei 106, Taiwan.

State Key Laboratory of Urban Water Resource and Environment, Harbin Institute of Technology, Harbin 150090, China.

出版信息

Bioresour Technol. 2020 May;303:122921. doi: 10.1016/j.biortech.2020.122921. Epub 2020 Jan 29.

Abstract

Effects of adding biochars on dark fermentation production of volatile fatty acids (VFAs) from glucose were investigated. Nine biochars were synthesized and applied, together with an activated carbon, as the testing amendment to enhance preferable fermentation. Biochars were porous materials with internal pores and excess surface functional groups, which would lead to enrichment of acetate over butyrate in the VFA production. Biochar coconut and biochar longan shell showed excess functional groups and high bulk internal crystallinity, presented 109.6% and 71.8% enrichments of acetate production, respectively. The syntrophic growth of fermentative bacteria and homoacetogens on biochar surfaces via direct interspecies electron transfer mechanism was assumed to interpret the noted enhanced acetate production. The excess functional groups on biochar surface to facilitate biofilm development and the high crystallinity of biochar bulk to ease electron transfer favored the production of acetate.

摘要

研究了添加生物炭对葡萄糖进行暗发酵生产挥发性脂肪酸(VFAs)的影响。合成了 9 种生物炭,并与活性炭一起作为测试添加剂,以增强优选发酵。生物炭是具有内部孔隙和过量表面官能团的多孔材料,这会导致 VFA 生产中乙酸盐的富集超过丁酸盐。椰壳生物炭和龙眼壳生物炭表现出过量的官能团和高的内部结晶度,乙酸盐的产量分别提高了 109.6%和 71.8%。通过直接种间电子转移机制,发酵细菌和同型产乙酸菌在生物炭表面的共生长被认为可以解释这种显著提高的乙酸盐产量。生物炭表面过量的官能团有助于生物膜的发展,生物炭本体的高结晶度有助于电子传递,有利于乙酸盐的生成。

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