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首页> 外文期刊>Electroanalysis >Comparative Response of Biosensing Platforms Based on Synthesized Graphene Oxide and Electrochemically Reduced Graphene
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Comparative Response of Biosensing Platforms Based on Synthesized Graphene Oxide and Electrochemically Reduced Graphene

机译:基于合成氧化石墨烯和电化学还原石墨烯的生物传感平台的比较响应

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In this work, we report the synthesis and characterization of different kinds of graphene nanomaterials and their applicability to the development of biosensing platforms. We have synthesized graphene oxide (GO) following a modified Hummer's method, which has been subsequently reduced by electrochemical procedures. This reduction strategy precludes the employment of toxic solvents, leading to a product, electrochemically reduced graphene (ERG), free of contaminants. The characterization of the synthesized nanomaterials has been performed by different techniques such as X-ray diffraction spectroscopy (XRD), Raman spectroscopy, X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM) and atomic force microscopy (AFM). The information gathered by this combination of techniques confirms that i) the synthesis methodology affords the production of GO nanosheets, which present a typical lateral dimension of several hundreds of nanometers and a thickness value of 1.3±0.1nm, ii) the reduction step has been successfully achieved leading to graphene nanosheets free of oxygen functionalities with an average lateral dimension of at least 1micrometer and a thickness value of 2.8±0.2nm. Once we have confirmed that both materials have been successfully synthesized, we have studied the effect of the effect of their inclusion in biosensing platforms on the analytical response, selecting a lactate oxidase based biosensor as a model system. We have demonstrated that although the incorporation of GO or ERG to the device results in an enhancement of the analytical response of the resulting biosensing platform, the former system offers slightly better analytical properties and a more reproducible response than the ERG one.
机译:在这项工作中,我们报告了不同种类的石墨烯纳米材料的合成,表征及其在生物传感平台开发中的适用性。我们按照改良的Hummer方法合成了氧化石墨烯(GO),随后通过电化学程序对其进行了还原。这种还原策略可避免使用有毒溶剂,从而产生一种电化学还原的石墨烯(ERG),且不含污染物。合成的纳米材料的表征已通过不同的技术进行,例如X射线衍射光谱(XRD),拉曼光谱,X射线光电子光谱(XPS),扫描电子显微镜(SEM)和原子力显微镜(AFM)。通过这种技术组合所收集的信息证实,i)合成方法可生产GO纳米片,其典型的横向尺寸为数百纳米,厚度值为1.3±0.1nm,ii)还原步骤已完成。成功实现了石墨烯纳米片的无氧功能,其平均横向尺寸至少为1微米,厚度值为2.8±0.2nm。一旦我们确认两种材料均已成功合成,我们就研究了将其包含在生物传感平台中对分析响应的影响,选择了基于乳酸氧化酶的生物传感器作为模型系统。我们已经证明,尽管将GO或ERG结合到设备中可以增强所得生物传感平台的分析响应,但与ERG相比,前一种系统提供了更好的分析性能和更可重复的响应。

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