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Three-dimensional sulfite oxidase bioanodes based on graphene functionalized carbon paper for sulfite/O-2 biofuel cells

  • We have developed a three-dimensional (3D) graphene electrode suitable for the immobilization of human sulfite oxidase (hSO), which catalyzes the electrochemical oxidation of sulfite via direct electron transfer (DET). The electrode is fabricated by drop-casting graphene-polyethylenimine (G-P) composites on carbon papers (CPs) precoated with graphene oxide (GO). The negatively charged hSO can be adsorbed electrostatically on the positively charged matrix (G-P) on CP electrodes coated with GO (CPG), with a proper orientation for accelerated DET. Notably, further electrochemical reduction of G-P on CPG electrodes leads to a 9-fold increase of the saturation catalytic current density (j(m)) for sulfite oxidation reaching 24.4 +/- 0.3 mu A to cm(-2), the highest value among reported DET-based hSO bioelectrodes. The increased electron transfer rate plays a dominating role in the enhancement of direct enzymatic current because of the improved electric contact of hSO with the electrode, The optimized hSO bioelectrode shows a significantWe have developed a three-dimensional (3D) graphene electrode suitable for the immobilization of human sulfite oxidase (hSO), which catalyzes the electrochemical oxidation of sulfite via direct electron transfer (DET). The electrode is fabricated by drop-casting graphene-polyethylenimine (G-P) composites on carbon papers (CPs) precoated with graphene oxide (GO). The negatively charged hSO can be adsorbed electrostatically on the positively charged matrix (G-P) on CP electrodes coated with GO (CPG), with a proper orientation for accelerated DET. Notably, further electrochemical reduction of G-P on CPG electrodes leads to a 9-fold increase of the saturation catalytic current density (j(m)) for sulfite oxidation reaching 24.4 +/- 0.3 mu A to cm(-2), the highest value among reported DET-based hSO bioelectrodes. The increased electron transfer rate plays a dominating role in the enhancement of direct enzymatic current because of the improved electric contact of hSO with the electrode, The optimized hSO bioelectrode shows a significant catalytic rate (k(cat): 25.6 +/- 0.3 s(-1)) and efficiency (k(cat)/K-m: 0.231 +/- 0.003 s(-1) mu M-1) compared to the reported hSO bioelectrodes. The assembly of the hSO bioanode and a commercial platinum biocathode allows the construction of sulfite/O-2 enzymatic biofuel cells (EBFCs) with flowing fuels. The optimized EBFC displays an open-circuit voltage (OCV) of 0.64 +/- 0.01 V and a maximum power density of 61 +/- 6 mu W cm(-2) (122 +/- 12 mW m(-3)) at 30 degrees C, which exceeds the best reported value by more than 6 times.zeige mehrzeige weniger

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Metadaten
Verfasserangaben:Jing TangORCiD, Rebecka Maria Larsen Werchmeister, Loredana Preda, Wei HuangORCiD, Zhiyong ZhengORCiD, Silke LeimkühlerORCiDGND, Ulla WollenbergerORCiDGND, Xinxin XiaoORCiD, Christian EngelbrektORCiD, Jens UlstrupORCiD, Jingdong ZhangORCiD
DOI:https://doi.org/10.1021/acscatal.9b01715
ISSN:2155-5435
Titel des übergeordneten Werks (Englisch):ACS catalysis
Verlag:American Chemical Society
Verlagsort:Washington
Publikationstyp:Wissenschaftlicher Artikel
Sprache:Englisch
Datum der Erstveröffentlichung:05.07.2019
Erscheinungsjahr:2019
Datum der Freischaltung:14.01.2021
Freies Schlagwort / Tag:carbon paper; direct electron transfer; enzymatic biofuel cell; reduced graphene oxide; sulfite oxidase
Band:9
Ausgabe:7
Seitenanzahl:23
Erste Seite:6543
Letzte Seite:6554
Fördernde Institution:Danish Council for Independent ResearchDet Frie Forskningsrad (DFF) [DFF 4093-00297]; China Scholarship Council (CSC)China Scholarship Council [201706220080, 201606130019]; Independent Research Fund Denmark [DFF-5054-00107]; Deutsche Forschungsgemeinschaft (DFG, German Research Foundation (DFG) [EXC 314/2, EXC 2008/1, 390540038]; Russian Science FoundationRussian Science Foundation (RSF) [17-13-01274]
Organisationseinheiten:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Biochemie und Biologie
DDC-Klassifikation:5 Naturwissenschaften und Mathematik / 57 Biowissenschaften; Biologie / 570 Biowissenschaften; Biologie
Peer Review:Referiert
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