舍瓦内拉
希瓦氏菌属
微生物燃料电池
周质间隙
纳米技术
制氢
生物相容性
利基
化学
材料科学
生化工程
生物物理学
细菌
生物化学
生物
催化作用
工程类
电极
有机化学
物理化学
大肠杆菌
基因
遗传学
阳极
作者
Song Lin,Tailin Wang,Zhengyu Tao,Zhenhui Li,Shangsong Li,Xiaoman Liu,Jun Liu,Xin Huang
标识
DOI:10.1016/j.cej.2024.150850
摘要
The synergetic integration of living microorganisms and nonliving matrices into a new artificial micro-ecological system is a crucial challenge in bio-manufacturing especially towards the development of sustainable energy technology. Here we develop a way of creating a Shewanella oneidensis based conductive micro-niche to boost hydrogen production by integrating graphene, polydopamine and alginate. We reveal that both the respiratory metabolism induces localized hypoxic conditions inside the micro-niche and the wired-up extracellular electron reverses transfer pathway from the outer environment to the periplasmic hydrogenases, contributing to the enhanced hydrogen production rate which is about 12.7 folds enhancement compared with that of the free Shewanella oneidensis in solution. Significantly, the whole assembly process shows good biocompatibility, ensuring that the Shewanella oneidensis inside the micro-niche could maintain hydrogen production for 30 days. Overall, it is anticipated the hybrid integration of microorganisms and abiotic material will provide an effective strategy to modulate green biomanufacturer as well as enhance biological hydrogen production.
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