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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >An ultrahigh electron-donating quaternary-N-doped reduced graphene oxide@carbon nanotube framework: a covalently coupled catalyst support for enzymatic bioelectrodes
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An ultrahigh electron-donating quaternary-N-doped reduced graphene oxide@carbon nanotube framework: a covalently coupled catalyst support for enzymatic bioelectrodes

机译:超高电子提供季掺杂的石墨烯氧化物氧化碳纳米管框架:酶生物电极的共价偶联催化剂载体

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摘要

Carbonaceous materials are currently the most extensively researched materials as catalyst supports for enzymatic biofuel cells (EBFCs). N-doping is an extremely effective strategy to tailor the unique electronic properties of carbon materials. However, the coexistence of electron-accepting pyridinic- and pyrrolic-N with electron-donating quaternary-N weakens the n-type behavior, resulting in lower electron mobility than that of pristine graphene, thus impacting a range of device applications. Herein, we demonstrate a covalently coupled ultrahigh quaternary-N-doped reduced graphene oxide/carbon nanotube (QN-rGO@CNT) network through electrostatic interaction as a novel enzyme support for EBFCs. It is found thatN bond types are controllable via thermal treatment, and the as-made QN-rGO@CNT composite with an interconnected porous structure, covalent coupling, and ultrahigh electron-donating quaternary-N-doping exhibits superior electrochemical properties. As a result, the present glucose/O-2 EBFCs equipped with enzyme-functionalized QN-rGO@CNT electrodes can deliver a high open circuit potential of 0.89 V, a short-circuit current density of 2.25 mA cm(-2) and a maximum power density of 0.9 mW cm(-2). Using the high-throughput fabrication method reported in this work, the monotype N-doped carbon hybrid can be commercially utilized as a promising supporting electrode in BFC applications.
机译:碳质材料目前是最广泛的研究材料作为催化剂支持酶生物燃料细胞(EBFC)。 n-掺杂是一种极其有效的策略,可以定制碳材料的独特电子性质。然而,用电子给予Quaternary-N的电子接受吡啶碱和吡啶-N的共存削弱了n型行为,导致较低的电子迁移率比原始石墨烯更低,从而影响一系列装置应用。在此,我们通过静电相互作用作为EBFC的新型酶支持,证明了共价偶联的超高季甲基掺杂的石墨烯/碳纳米管(QN-RGO @ CNT)网络。结果发现,通过热处理可控的键合类型,并且具有互连的多孔结构,共价偶联和超高电子提供的季型N-掺杂的AS制造的QN-RGO @ CNT复合材料表现出优异的电化学性质。结果,配备有酶官能化QN-RGO @ CNT电极的本发明的葡萄糖/ O-2 EBFC可以提供0.89 V的高开关电位,短路电流密度为2.25 mA cm(-2)和a最大功率密度为0.9 mW cm(-2)。使用在该工作中报道的高通量制造方法,单向型N掺杂的碳杂合体可以商业用作BFC应用中的有希望的支撑电极。

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