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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Graphene oxide-supported carbon nanofiber-like network derived from polyaniline: A novel composite for enhanced glucose oxidase bioelectrode performance
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Graphene oxide-supported carbon nanofiber-like network derived from polyaniline: A novel composite for enhanced glucose oxidase bioelectrode performance

机译:衍生自聚苯胺的石墨烯氧化碳纳米纤维样网:一种用于增强葡萄糖氧化酶生物电极性能的新型复合材料

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摘要

A three-dimensional architecture of PANI@ GO hybrid was synthesized via in-situ polymerization of aniline monomers on the surface of graphene oxide (GO) and carbonized at 1600 degrees C. The SEM images showed that surfaces of planar GO were covered by a compact nanofiber-like polyaniline (PANI) layer which presented an interconnected network. Nanofiber-like PANI on the GO surface was mostly preserved and became the carbon nanofibers (CNFs) after carbonization. The TEM images showed that the carbonized PANI grew seamlessly on the GO surface and served as conductive "network" between interlayers of GO. The carbonized PANI@ GO hybrid was used to modify a glassy carbon electrode (GCE) based on GOx, resulting in efficient direct electron transfer (DET) and excellent bio-catalytic performance. In addition, a glucose/O-2 fuel cell constructed using Nafion/GOx/PANI(1600)@ GO/GCE as the anode and an E-TEK Pt/C modified GCE as the cathode generated a maximum power density of 0.756 mW cm(-2) at 0.42 V. Findings in this study may be helpful for exploiting novel materials for immobilization of enzymes through carbonizing conducting polymers or their composites with inorganic materials at high temperature for applications in enzymatic biofuel cells or biosensors.
机译:通过石墨烯(GO)表面上的苯胺单体的原位聚合在1600℃下碳化的苯胺单体的原位聚合来合成了三维结构。SEM图像显示平面覆盖的平面覆盖呈现互连网络的纳米纤维状聚苯胺(PANI)层。在去表面上的纳米纤维状Pani大多保存并在碳化后成为碳纳米纤维(CNF)。 TEM图像显示碳化的PANI在转向表面上无缝地增长,并且在去层间之间的导电“网络”。碳化的PANI @ GO杂种用于改变基于GOX的玻璃电极(GCE),导致有效的直接电子转移(DET)和优异的生物催化性能。此外,使用Nafion / Gox / Pani(1600)@ Go / GCE构造的葡萄糖/ O-2燃料电池作为阳极和E-TEK PT / C改性GCE,因为阴极产生的最大功率密度为0.756 mw cm (-2)在0.42 V.本研究中的发现可能有助于利用通过在酶生物燃料细胞或生物传感器中的高温下具有无机材料的碳化传导聚合物或其复合材料来利用新材料来固定酶。

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