Li Weiming, He Lei, Cheng Chi, Cao Guangli, Ren Nanqi
State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, China.
School of Bioengineering, Dalian University of Technology, Dalian 116024, China.
Bioresour Technol. 2020 Jun;306:123088. doi: 10.1016/j.biortech.2020.123088. Epub 2020 Feb 28.
Low hydrogen yield was the bottleneck of dark fermentative hydrogen production. To solve this problem, the effects of rice straw-derived biochar on hydrogen production was investigated in different fermentation types. Ethanol-type and butyrate-type fermentations, two dominant types of dark fermentation, were carried out in batch fermentations with different concentrations of biochar. The results revealed that 3 g/L was the best concentration for both types of fermentations. Hydrogen production increased by 118.4% and 79.6% in ethanol-type and butyrate-type fermentations, respectively. The maximal hydrogen yields of ethanol-type and butyrate-type fermentations were 1.34 and 2.36 mol/mol-glucose, respectively. The addition of biochar buffered the broth pH, lowered the redox potential, and released mineral nutrients. The porosity of biochar boosted cell immobilization and thus improved the H productivity. This study demonstrated the enhancement effect of biochar on ethanol- and butyrate-type fermentative hydrogen productions, and enhanced the understanding of the functional mechanisms of biochar.
低氢气产量是黑暗发酵制氢的瓶颈。为解决这一问题,研究了稻草衍生生物炭在不同发酵类型中对产氢的影响。在分批发酵中,使用不同浓度的生物炭进行了乙醇型和丁酸盐型发酵这两种主要的黑暗发酵类型。结果表明,3 g/L是两种发酵类型的最佳浓度。在乙醇型和丁酸盐型发酵中,产氢量分别增加了118.4%和79.6%。乙醇型和丁酸盐型发酵的最大氢气产量分别为1.34和2.36 mol/mol-葡萄糖。生物炭的添加缓冲了发酵液的pH值,降低了氧化还原电位,并释放了矿物质营养。生物炭的孔隙率促进了细胞固定化,从而提高了产氢效率。本研究证明了生物炭对乙醇型和丁酸盐型发酵产氢的增强作用,并增进了对生物炭功能机制的理解。