Engineering Shewanella oneidensis‐Carbon Felt Biohybrid Electrode Decorated with Bacterial Cellulose Aerogel‐Electropolymerized Anthraquinone to Boost Energy and Chemicals Production

Author:

Liu Qijing1,Xu Wenliang1,Ding Qinran1,Zhang Yan1,Zhang Junqi1,Zhang Baocai1,Yu Huan1,Li Chao1,Dai Longhai2,Zhong Cheng3,Lu Wenyu1,Liu ZhanYing4,Li Feng1,Song Hao15ORCID

Affiliation:

1. Frontier Science Center for Synthetic Biology (Ministry of Education) Key Laboratory of Systems Bioengineering, and School of Chemical Engineering and Technology Tianjin University Tianjin 300072 China

2. State Key Laboratory of Biocatalysis and Enzyme Engineering School of Life Sciences Hubei University Wuhan 430062 China

3. State Key Laboratory of Food Nutrition and Safety key Laboratory of Industrial Fermentation Microbiology, (ministry of education) Tianjin University of Science and Technology Tianjin 300457 China

4. Center for Energy Conservation and Emission Reduction in Fermentation Industry in Inner Mongolia Engineering Research Center of Inner Mongolia for Green Manufacturing in Bio‐fermentation Industry, and School of Chemical Engineering Inner Mongolia University of Technology Hohhot Inner Mongolia 010051 China

5. Haihe Laboratory of Sustainable Chemical Transformations Tianjin 300192 China

Abstract

AbstractInterfacial electron transfer between electroactive microorganisms (EAMs) and electrodes underlies a wide range of bio‐electrochemical systems with diverse applications. However, the electron transfer rate at the biotic‐electrode interface remains low due to high transmembrane and cell‐electrode interfacial electron transfer resistance. Herein, a modular engineering strategy is adopted to construct a Shewanella oneidensis‐carbon felt biohybrid electrode decorated with bacterial cellulose aerogel‐electropolymerized anthraquinone to boost cell‐electrode interfacial electron transfer. First, a heterologous riboflavin synthesis and secretion pathway is constructed to increase flavin‐mediated transmembrane electron transfer. Second, outer membrane c‐Cyts OmcF is screened and optimized via protein engineering strategy to accelerate contacted‐based transmembrane electron transfer. Third, a S. oneidensis‐carbon felt biohybrid electrode decorated with bacterial cellulose aerogel and electropolymerized anthraquinone is constructed to boost the interfacial electron transfer. As a result, the internal resistance decreased to 42 Ω, 480.8‐fold lower than that of the wild‐type (WT) S. oneidensis MR‐1. The maximum power density reached 4286.6 ± 202.1 mW m−2, 72.8‐fold higher than that of WT. Lastly, the engineered biohybrid electrode exhibited superior abilities for bioelectricity harvest, Cr6+ reduction, and CO2 reduction. This study showed that enhancing transmembrane and cell‐electrode interfacial electron transfer is a promising way to increase the extracellular electron transfer of EAMs.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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