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Melt quenched vanadium oxide embedded in graphene oxide sheets as composite electrodes for amperometric dopamine sensing and lithium ion battery applications

机译:嵌入氧化石墨烯片中的熔融淬火钒氧化物作为复合电极,用于安培多巴胺感测和锂离子电池应用

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Electrochemical sensors and lithium-ion batteries are two important topics in electrochemistry that have attracted much attention owing to their extensive applications in enzyme-free biosensors and portable electronic devices. Herein, we report a simple hydrothermal approach for synthesizing composites of melt quenched vanadium oxide embedded on graphene oxide of equal proportion (MVGO50) for the fabrication of electrodes for nonenzymatic amperometic dopamine sensor and lithium-ion battery applications. The sensing performance of MVGO50 electrodes through chronoamperometry studies in 0.1 M PBS solution (at pH 7) over a wide range of dopamine concentration exhibited a highest sensitivity of 25.02 mu A mM(-1) cm(-2) with the lowest detection limit of 0.07 mu M. In addition, the selective sensing capability of MVGO50 was also tested through chronoamperometry studies by the addition of a very small concentration of dopamine (10 mu M) in the presence of a fairly higher concentration of uric acid (10 mM) as the interfering species. Furthermore, the reversible lithium cycling properties of MVGO50 are evaluated by galvanostatic charge-discharge cycling studies. MVGO50 electrodes exhibited enhanced rate capacity of up to 200 mAhg(-1) at a current of 0.1C rate and remained stable during cycling. These results indicate that MVGO composites are potential candidates for electrochemical device applications. (C) 2017 Elsevier B.V. All rights reserved.
机译:电化学传感器和锂离子电池是电化学中的两个重要主题,由于它们在无酶生物传感器和便携式电子设备中的广泛应用而备受关注。在此,我们报告了一种简单的水热方法,用于合成等比例嵌入氧化石墨烯上的熔融淬火钒氧化物的复合材料(MVGO50),用于制造非酶类安培多巴胺传感器和锂离子电池应用的电极。 MVGO50电极通过计时安培法在0.1 M PBS溶液(pH 7)中在宽范围的多巴胺浓度范围内的感测性能显示出最高灵敏度25.02μA mM(-1)cm(-2),最低检测限为0.07μM。此外,通过计时安培法研究还通过在非常高浓度的尿酸(10 mM)存在下添加非常低浓度的多巴胺(10μM)来测试MVGO50的选择性传感能力。干扰物种。此外,通过恒电流充放电循环研究评估了MVGO50的可逆锂循环性能。 MVGO50电极在0.1C的电流下显示出高达200 mAhg(-1)的增强的速率容量,并且在循环过程中保持稳定。这些结果表明,MVGO复合材料是电化学装置应用的潜在候选者。 (C)2017 Elsevier B.V.保留所有权利。

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