化学
光电流
纳米技术
半导体
光电化学
太阳能电池
光电子学
电化学
材料科学
电极
物理化学
作者
Bing Fu,Xianwen Mao,Youngchan Park,Zhiheng Zhao,T. -M. Yan,Won Jung,Danielle H. Francis,Wenjie Li,Brooke Pian,Farshid Salimijazi,Mokshin Suri,Tobias Hanrath,Buz Barstow,Peng Chen
出处
期刊:Nature Chemistry
[Nature Portfolio]
日期:2023-07-27
卷期号:15 (10): 1400-1407
被引量:14
标识
DOI:10.1038/s41557-023-01285-z
摘要
Microbe-semiconductor biohybrids, which integrate microbial enzymatic synthesis with the light-harvesting capabilities of inorganic semiconductors, have emerged as promising solar-to-chemical conversion systems. Improving the electron transport at the nano-bio interface and inside cells is important for boosting conversion efficiencies, yet the underlying mechanism is challenging to study by bulk measurements owing to the heterogeneities of both constituents. Here we develop a generalizable, quantitative multimodal microscopy platform that combines multi-channel optical imaging and photocurrent mapping to probe such biohybrids down to single- to sub-cell/particle levels. We uncover and differentiate the critical roles of different hydrogenases in the lithoautotrophic bacterium Ralstonia eutropha for bioplastic formation, discover this bacterium's surprisingly large nanoampere-level electron-uptake capability, and dissect the cross-membrane electron-transport pathways. This imaging platform, and the associated analytical framework, can uncover electron-transport mechanisms in various types of biohybrid, and potentially offers a means to use and engineer R. eutropha for efficient chemical production coupled with photocatalytic materials.
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