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Self-assembly of glucose oxidase on reduced graphene oxide-magnetic nanoparticles nanocomposite-based direct electrochemistry for reagentless glucose biosensor

机译:葡萄糖氧化酶在还原性氧化石墨烯-磁性纳米颗粒上的纳米复合材料基于直接电化学的无试剂葡萄糖生物传感器自组装

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摘要

A novel approach of the immobilization of a highly selective and stable glucose biosensor based on direct electrochemistry was fabricated by a self-assembly of glucose oxidase (GOD) on reduced graphene oxide (RGO) cova-lently conjugated to magnetic nanoparticles (Fe_3O_4 NPs) modified on a magnetic screen-printed electrode (MSPE). The RGO-Fe_3O4 nanocomposite has remarkable enhancement in large surface areas, is favorable environment for enzyme immobilization, facilitates electron transfer between enzymes and electrode surfaces and possesses superparamagnetism property. The morphology and electrochemical properties of RGO-Fe_3O_4/GOD were characterized by scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), Raman spectroscopy, cyclic voltammetry (CV) and amperometry. The modified electrode was a fast direct electron transfer with an apparent electron transfer rate constant (k_s) of 13.78 s~(-1). The proposed biosensor showed fast amperometric response (3 s) to glucose with a wide linear range from 0.05 to 1 mM, a low detection limit of 0.1 μM at a signal to noise ratio of 3 (S/N = 3) and good sensitivity (5.9 μA/mM). The resulting biosensor has high stability, good reproducibility, excellent selectivity and successfully applied detection potential at - 0.45 V. This mediatorless glucose sensing used the advantages of covalent bonding and self-assembly as a new approach for immobilizing enzymes without any binder. It would be worth noting that it opens a new avenue for fabricating excellent electrochemical biosensors. Novelty statement: This is a new approach that reporting the immobilization of glucose oxidase on reduced graphene oxide (RGO) covalently conjugated to magnetic nanoparticles (Fe_3O_4 NPs) by electrostatic interaction and modified screen printed electrode. We propose the reagentless with fabrication method without binder and adhesive agents for immobilized enzyme. Fe_3O_4 NPs increasing surface area to enhance the immobilization and prevent the leaching of enzymes at electrode surfaces by magnetic stickers which is improve the stability of the biosensor. Based on this synthesis technique, it is a good new strategy and simple used to fabrication of third-generation glucose biosensor and this nanocomposite could be used as a platform for disposable biosensor and biofuel cell applications.
机译:通过将葡萄糖氧化酶(GOD)自组装在共价修饰的磁性纳米粒子(Fe_3O_4 NPs)上的氧化石墨烯(RGO)上,将葡萄糖氧化酶(GOD)自组装,从而构建了一种基于直接电化学固定高选择性和稳定葡萄糖生物传感器的新方法。在磁性丝网印刷电极(MSPE)上。 RGO-Fe_3O4纳米复合材料在大表面积上具有显着增强,为酶的固定化提供了良好的环境,促进了酶与电极表面之间的电子转移,并具有超顺磁性。通过扫描电子显微镜(SEM),傅里叶变换红外光谱(FTIR),拉曼光谱,循环伏安法(CV)和安培法对RGO-Fe_3O_4 / GOD的形貌和电化学性能进行了表征。改性电极为快速直接电子转移,其表观电子转移速率常数(k_s)为13.78 s〜(-1)。拟议中的生物传感器对葡萄糖的安培响应快速(3 s),线性范围从0.05到1 mM,信噪比3(S / N = 3)时检测限低至0.1μM,灵敏度高( 5.9μA/ mM)。所得的生物传感器具有高稳定性,良好的重现性,出色的选择性以及在-0.45 V时成功应用的检测电势。这种无介导的葡萄糖传感技术利用共价键合和自组装的优势,作为固定酶而没有任何粘合剂的新方法。值得注意的是,它为制造出色的电化学生物传感器开辟了一条新途径。新颖性声明:这是一种新方法,该方法报告了通过静电相互作用和修饰的丝网印刷电极将葡萄糖氧化酶固定在与磁性纳米颗粒(Fe_3O_4 NPs)共价结合的还原氧化石墨烯(RGO)上的过程。我们提出了一种无试剂的制备方法,该方法不需要固定化酶的粘合剂和粘合剂。 Fe_3O_4 NPs增加表面积以增强固定作用并防止酶通过磁贴在电极表面浸出,从而提高了生物传感器的稳定性。基于这种合成技术,它是一种很好的新策略,可以轻松地用于第三代葡萄糖生物传感器的制造,并且该纳米复合材料可以用作一次性生物传感器和生物燃料电池应用的平台。

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