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Controlled direct electron transfer kinetics of fructose dehydrogenase at cup-stacked carbon nanofibers

机译:在杯堆叠碳纳米纤维上控制果糖脱氢酶的直接电子转移动力学

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摘要

Graphene edge sites not only facilitate heterogeneous electron transfer reactions of redox species because of localization of electrons, but also allow sensitivities and selectivities to be tuned by controlling the atomic oxygen/carbon (O/C) ratio. Here, we immobilized fructose dehydrogenase (FDH) onto the surface of cup-stacked carbon nanofibers (CSCNFs), which provide highly ordered graphene edges with a controlled O/C ratio, and investigated the direct electron communication with FDH. As the O/C ratio decreased at the CSCNF surface, the negative zeta potential was mitigated and the electrochemical communication with FDH was facilitated. This is likely due to improved orientation of FDH molecules on the CSCNF surface. CSCNFs with a controlled O/C ratio could be applied to FDH-based D-fructose biosensors with tunable dynamic range and fructose biofuel cells with a controlled maximum current.
机译:石墨烯缘位点不仅促进了氧化还原物种的异质电子转移反应,由于电子的定位,还允许通过控制原子氧/碳(O / C)比来调节敏感性和选择性。 这里,我们将果糖脱氢酶(FDH)固定在杯中的碳纳米纤维(CSCNF)的表面上,其提供具有受控O / C比的高度有序的石墨烯边缘,并研究了与FDH的直接电子通信。 随着在CSCNF表面的O / C比率下降,减轻了负Zeta电位,促进了与FDH的电化学通信。 这可能是由于CSCNF表面上的FDH分子的取向提高。 具有受控O / C比的CSCNF可以应用于基于FDH的D-果糖生物传感器,具有可调谐动态范围和具有受控最大电流的果糖生物燃料电池。

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