Analytical Chemistry - Center for Electrochemical Sciences (CES), Faculty of Chemistry and Biochemistry, Ruhr-University Bochum, Universitätsstraße 150, D-44780 Bochum, Germany.
Centre de Recherche Paul Pascal, CNRS UMR 5031, University of Bordeaux, Avenue Albert Schweitzer, 33600 Pessac, France.
Bioelectrochemistry. 2023 Feb;149:108314. doi: 10.1016/j.bioelechem.2022.108314. Epub 2022 Oct 27.
A new redox polymer/bilirubin oxidase (BOD)-based gas diffusion electrode was designed to be implemented as the non-current and non-stability limiting biocathode in a glucose/O biofuel cell that acts as a self-powered glucose biosensor. For the proof-of-concept, a bioanode comprising the Os-complex modified redox polymer P(VI-co-AA)-[Os(bpy)Cl]Cl and FAD-dependent glucose dehydrogenase to oxidize the analyte was used. In order to develop an optimal O-reducing biocathode for the biofuel cell Mv-BOD as well as Bp-BOD and Mo-BOD have been tested in gas diffusion electrodes in direct electron transfer as well as in mediated electron transfer immobilized in the Os-complex modified redox polymer P(VI-co-AA)-[Os(diCl-bpy)]Cl. The resulting biofuel cell exhibits a glucose-dependent current and power output in the concentration region between 1 and 10 mM. To create a more realistic test environment, the performance and long-term stability of the biofuel cell-based self-powered glucose biosensor has been investigated in a flow-through cell design.
设计了一种新型氧化还原聚合物/胆红素氧化酶(BOD)基气体扩散电极,用作在葡萄糖/O 生物燃料电池中作为无电流和非稳定性限制的生物阴极,该电池可作为自供电葡萄糖生物传感器。为了验证概念,使用包含 Os 配合物修饰的氧化还原聚合物 P(VI-co-AA)-[Os(bpy)Cl]Cl 和依赖黄素的葡萄糖脱氢酶的生物阳极来氧化分析物。为了开发用于生物燃料电池的最佳 O 还原生物阴极,已经在气体扩散电极中测试了 Mv-BOD、Bp-BOD 和 Mo-BOD,以进行直接电子转移以及在 Os 配合物修饰的氧化还原聚合物 P(VI-co-AA)-[Os(diCl-bpy)]Cl 中固定的中介电子转移。所得生物燃料电池在 1 至 10 mM 的浓度范围内表现出葡萄糖依赖性电流和功率输出。为了创造更现实的测试环境,在流动池设计中研究了基于生物燃料电池的自供电葡萄糖生物传感器的性能和长期稳定性。