电子转移
生物膜
纳米颗粒
电子传输链
电化学
纳米技术
电极
微生物燃料电池
材料科学
化学
化学工程
光化学
生物化学
细菌
生物
阳极
遗传学
物理化学
工程类
作者
Yuting He,Qian Fu,Jun Li,Liang Zhang,Xun Zhu,Qiang Liao
出处
期刊:Small
[Wiley]
日期:2024-01-17
卷期号:20 (25)
被引量:4
标识
DOI:10.1002/smll.202309648
摘要
Abstract The utility of electrochemical active biofilm in bioelectrochemical systems has received considerable attention for harvesting energy and chemical products. However, the slow electron transfer between biofilms and electrodes hinders the enhancement of performance and still remains challenging. Here, using Fe 3 O 4 /L‐Cys nanoparticles as precursors to induce biomineralization, a facile strategy for the construction of an effective electron transfer pathway through biofilm and biological/inorganic interface is proposed, and the underlying mechanisms are elucidated. Taking advantage of an on‐chip interdigitated microelectrode array (IDA), the conductive current of biofilm that is related to the electron transfer process within biofilm is characterized, and a 2.10‐fold increase in current output is detected. The modification of Fe 3 O 4 /L‐Cys on the electrode surface facilitates the electron transfer between the biofilm and the electrode, as the bio/inorganic interface electron transfer resistance is only 16% compared to the control. The in‐situ biosynthetic Fe‐containing nanoparticles (e.g., FeS) enhance the transmembrane EET and the EET within biofilm, and the peak conductivity increases 3.4‐fold compared to the control. The in‐situ biosynthesis method upregulates the genes involved in energy metabolism and electron transfer from the transcriptome analysis. This study enriches the insights of biosynthetic nanoparticles on electron transfer process, holding promise in bioenergy conversion.
科研通智能强力驱动
Strongly Powered by AbleSci AI