State Key Laboratory of Urban Water Resources and Environment, Harbin Institute of Technology, Harbin, 150090, China.
State Key Laboratory of Urban Water Resources and Environment, Harbin Institute of Technology, Harbin, 150090, China.
Chemosphere. 2019 Mar;219:358-364. doi: 10.1016/j.chemosphere.2018.11.212. Epub 2018 Nov 30.
Improving anode configuration with polymer or nanomaterial modification is promising for enhancing microbial fuel cell performance. However, how anode modification affects biofilm development and electrogenic function remains poorly understood. In this study, the carbon cloth anode modified with polyaniline and reduced graphene oxide was successfully fabricated which obtained the highest power output. Accelerated electrogenic biofilm formation and the better electrogenic bacterial colonization based on the superior material properties (preferable electrochemical characteristics, the film-like structure and the more activated sites) were observed with the in situ biofilm development monitoring. The acclimation time was 2.4 times shorter with graphene and polyaniline modified anode than the bare one when inoculated with wastewater. Biofilm structure and function analysis show that Geobacter is the most predominant with the abundance as high as 81.4%, and meanwhile, electrogenesis related outer-surface octaheme c-type cytochrome omcZ is highly expressed in the modified anode. The anode modified with graphene and polyaniline favors Geobacter colonization, accelerates electrogenic biofilm formation and improves omcZ expression level, eventually leading to the improved performance of microbial fuel cell. The study for the first time reveals the impacts on biofilm development and microbial function by anode modification, which will better guide the potential application of microbial fuel cell for wastewater recovery.
采用聚合物或纳米材料修饰阳极以提高微生物燃料电池性能具有广阔的前景。然而,阳极修饰如何影响生物膜的发展和产电功能仍知之甚少。本研究成功制备了聚苯胺和还原氧化石墨烯修饰的碳布阳极,获得了最高的功率输出。通过原位生物膜发展监测,观察到基于优异的材料特性(更优的电化学特性、薄膜状结构和更多的活性位点),加速了电活性生物膜的形成和更好的产电细菌定殖。与裸阳极相比,用废水接种时,石墨烯和聚苯胺修饰阳极的驯化时间缩短了 2.4 倍。生物膜结构和功能分析表明,优势菌属为 Geobacter,丰度高达 81.4%,同时,修饰阳极中与产电相关的外表面八面体 c 型细胞色素 omcZ 高度表达。石墨烯和聚苯胺修饰的阳极有利于 Geobacter 的定殖,加速电活性生物膜的形成并提高 omcZ 的表达水平,最终提高微生物燃料电池的性能。该研究首次揭示了阳极修饰对生物膜发展和微生物功能的影响,将更好地指导微生物燃料电池在废水回收中的潜在应用。