Suppr超能文献

电化学辅助微生物从乙酸盐中生产氢气。

Electrochemically assisted microbial production of hydrogen from acetate.

作者信息

Liu Hong, Grot Stephen, Logan Bruce E

机构信息

Penn State University, University Park, Pennsylvania 16802, USA.

出版信息

Environ Sci Technol. 2005 Jun 1;39(11):4317-20. doi: 10.1021/es050244p.

Abstract

Hydrogen production via bacterial fermentation is currently limited to a maximum of 4 moles of hydrogen per mole of glucose, and under these conditions results in a fermentation end product (acetate; 2 mol/mol glucose) that bacteria are unable to further convert to hydrogen. It is shown here that this biochemical barrier can be circumvented by generating hydrogen gas from acetate using a completely anaerobic microbial fuel cell (MFC). By augmenting the electrochemical potential achieved by bacteria in this MFC with an additional voltage of 250 mV or more, it was possible to produce hydrogen at the cathode directly from the oxidized organic matter. More than 90% of the protons and electrons produced by the bacteria from the oxidation of acetate were recovered as hydrogen gas, with an overall Coulombic efficiency (total recovery of electrons from acetate) of 60-78%. This is equivalent to an overall yield of 2.9 mol H2/mol acetate (assuming 78% Coulombic efficiency and 92% recovery of electrons as hydrogen). This bio-electrochemically assisted microbial system, if combined with hydrogen fermentation that produces 2-3 mol H2/mol glucose, has the potential to produce ca. 8-9 mol H2/mol glucose at an energy cost equivalent to 1.2 mol H2/mol glucose. Production of hydrogen by this anaerobic MFC process is not limited to carbohydrates, as in a fermentation process, as any biodegradable dissolved organic matter can theoretically be used in this process to generate hydrogen from the complete oxidation of organic matter.

摘要

通过细菌发酵产氢目前最多限于每摩尔葡萄糖产生4摩尔氢气,并且在这些条件下会产生一种发酵终产物(乙酸盐;2摩尔/摩尔葡萄糖),而细菌无法将其进一步转化为氢气。本文表明,通过使用完全厌氧的微生物燃料电池(MFC)从乙酸盐中产生氢气,可以规避这一生物化学障碍。通过在该MFC中用250毫伏或更高的额外电压增强细菌实现的电化学势,有可能在阴极直接从氧化的有机物中产生氢气。细菌从乙酸盐氧化中产生的质子和电子,超过90%作为氢气被回收,总体库仑效率(从乙酸盐中回收的电子总量)为60 - 78%。这相当于2.9摩尔氢气/摩尔乙酸盐的总产率(假设库仑效率为78%且92%的电子作为氢气回收)。这种生物电化学辅助的微生物系统,如果与每摩尔葡萄糖产生2 - 3摩尔氢气的氢发酵相结合,有可能以相当于1.2摩尔氢气/摩尔葡萄糖的能量成本产生约8 - 9摩尔氢气/摩尔葡萄糖。通过这种厌氧MFC过程产氢并不像发酵过程那样局限于碳水化合物,因为理论上任何可生物降解的溶解有机物都可用于该过程,从有机物的完全氧化中产生氢气。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验