Lin Richen, Deng Chen, Zhang Wuyuan, Hollmann Frank, Murphy Jerry D
MaREI Centre, Environmental Research Institute, University College Cork, Cork, Ireland; School of Engineering, University College Cork, Cork, Ireland.
MaREI Centre, Environmental Research Institute, University College Cork, Cork, Ireland; School of Engineering, University College Cork, Cork, Ireland.
Trends Biotechnol. 2021 Apr;39(4):370-380. doi: 10.1016/j.tibtech.2020.12.004. Epub 2021 Jan 12.
Bioelectrochemical technologies such as electro-fermentation and microbial CO electrosynthesis are emerging interdisciplinary technologies that can produce renewable fuels and chemicals (such as carboxylic acids). The benefits of electrically driven bioprocesses include improved production rate, selectivity, and carbon conversion efficiency. However, the accumulation of products can lead to inhibition of biocatalysts, necessitating further effort in separating products. The recent discovery of a new photoenzyme, capable of converting carboxylic acids to bio-alkanes, has offered an opportunity for system integration, providing a promising approach for simultaneous product separation and valorisation. Combining the strengths of photo/bio/electrochemical catalysis, we discuss an innovative circular cascading system that converts biomass and CO to value-added bio-alkanes (CH, n = 2 to 5) whilst achieving carbon circularity.
诸如电发酵和微生物CO电合成等生物电化学技术是新兴的跨学科技术,能够生产可再生燃料和化学品(如羧酸)。电驱动生物过程的优点包括提高生产率、选择性和碳转化效率。然而,产物的积累会导致生物催化剂受到抑制,因此需要在产物分离方面进一步努力。最近发现的一种能够将羧酸转化为生物烷烃的新型光酶,为系统集成提供了机会,为同时进行产物分离和增值提供了一种有前景的方法。结合光/生物/电化学催化的优势,我们讨论了一种创新的循环级联系统,该系统将生物质和CO转化为增值生物烷烃(CH,n = 2至5),同时实现碳循环。