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首页> 外文期刊>Journal of Electroanalytical Chemistry: An International Journal Devoted to All Aspects of Electrode Kinetics, Interfacial Structure, Properties of Electrolytes, Colloid and Biological Electrochemistry >3D porous structured polyaniline/reduced graphene oxide/copper oxide decorated electrode for high performance nonenzymatic glucose detection
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3D porous structured polyaniline/reduced graphene oxide/copper oxide decorated electrode for high performance nonenzymatic glucose detection

机译:3D多孔结构聚苯胺/氧化铜氧化物/氧化铜装饰电极,用于高性能非酶葡萄糖检测

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摘要

In this study, graphene oxide (GO) was directly co-deposited with polyaniline (PANI) on a Pt electrode and a 3D cluster structure of GO with wrinkled and rough surface was formed during the electro-polymerization and deposition process. Results of Raman spectra, X-ray photoelectron spectroscopy (XPS) showed that strong conjugated interactions had formed between GO clusters and PANI nanofibers. After GO was reduced, XPS measurements and electrochemical impedance spectra (EIS) studies indicated that most of the oxygen functional groups in GO were successfully removed and the conductivity of the composite material was dramatically increased. The morphology and structure of the prepared Pt/PANI/rGO/CuO electrodes were characterized by scanning electron microscopy (SEM) and the electrochemical response of the proposed electrodes in presence of glucose was investigated. Results showed that the 3D structure of rGO dusters greatly increased its effective surface area and improved the electronic transmission efficiency of the composite nanomaterial thus the Pt/PANI/rGO/CuO modified electrodes displayed much higher electrocatalytic activity than the Pt/PANI/CuO modified electrodes towards glucose, exhibiting a high sensitivity of 1252 mu A mM(-1) cm(-2), a fast response time of < 3 s, a low detection limit of 1.5 mu M (S/N = 3) and a wide linear range from 0 mM to 13 mM. The Pt/PANI/rGO/CuO electrode effectively resisted the effect of interferences such as L-ascorbic acid (AA), acetaminophen (AP) and uric acid (UA) and retained similar to 90% of its initial sensitivity after 15 days.
机译:在该研究中,将石墨烯(GO)直接用PT电极上的聚苯胺(PANI)共沉积,并且在电聚合和沉积过程中形成具有皱褶和粗糙表面的3D簇结构。拉曼光谱的结果,X射线光电子能谱(XPS)表明,在簇和PANI纳米纤维之间形成强缀合相互作用。降低后,XPS测量和电化学阻抗谱(EIS)研究表明,GO的大部分氧官能团被成功除去,复合材料的电导率显着增加。通过扫描电子显微镜(SEM)表征制备的PT / PANI / RGO / CUO电极的形态和结构,并研究了葡萄糖存在下所提出的电极的电化学响应。结果表明,RGO除尘器的3D结构大大增加了其有效表面积,改善了复合纳米材料的电子传输效率,因此Pt / PANI / RGO / CUO改性电极显示出比Pt / PANI / CUO改性电极更高的电催化活性朝向葡萄糖,表现出1252μmm(-1)cm(-2)的高灵敏度,快速响应时间<3 s,低检测限为1.5 mu m(s / n = 3)和宽线性范围为0 mm至13 mm。 PT / PANI / RGO / CUO电极有效地抵抗诸如L-抗坏血酸(AA),乙酰氨基酚(AP)和尿酸(UA)的干扰效果,并在15天后保留了其初始敏感性的90%。

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