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首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >Direct-laser-writing of three-dimensional porous graphene frameworks on indium-tin oxide for sensitive electrochemical biosensing
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Direct-laser-writing of three-dimensional porous graphene frameworks on indium-tin oxide for sensitive electrochemical biosensing

机译:用于敏感电化学生物传感型氧化铟锡氧化铟锡的三维多孔石墨烯框架的直激光写入

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摘要

The fabrication of graphene electrode with three-dimensional (3D) porous architecture would be highly desirable for electrochemical (bio-)sensing. Direct-laser-writing (DLW) on polyimide sheet has been recognized as an advance approach to pattern 3D porous graphene frameworks (3DPGFs)-based electrode. Herein, taking advantages of this straightforward and cost-effective DLW technique, we demonstrated the scalable and robust fabrication of a new type of 3DPGFs-based electrode patterned on the surface of indium-tin oxide (ITO) glass, denoted as 3DPGF@ITO. In this study, polyimide layer was synthesized on ITO glass surface not only to act as a sacrificial precursor for the in situ growth of 3DPGFs, but also to serve as a passivation layer for the effective separation of 3DPGFs working area and ITO contact pad. Importantly, the laser-induced 3DPGFs on ITO surface exhibit a 3D hierarchical and macroporous architecture consisting of interconnected multi-layered graphene sheets with large surface area and abundant edge-plane-like defective sites. These appealing features render the proposed 3DPGF@ITO electrode with marked improvement in electrochemical performance over traditional commercial electrodes. Finally, the developed 3DPGF@ITO electrode was successfully applied as a working electrode to selectively detect three important biospecies, namely, ascorbic acid, dopamine, and uric acid, in their ternary mixture with a high resolution of oxidation potentials. Thus, we envision that the 3DPGF@ITO electrode will open highly promising perspectives for the development of sensitive electrode-based (bio-)sensors.
机译:具有三维(3D)多孔结构的石墨烯电极的制造对于电化学(生物)感测是非常理想的。在聚酰亚胺板上的直射 - 激光写入(DLW)已被识别为模式3D多孔石墨烯框架(3DPGFS)基电极的预先方法。这里,采用这种直接和经济高效的DLW技术的优点,我们证明了在氧化铟锡(ITO)玻璃表面上图案化的新型3DPGFS的电极的可扩展和稳健的制造,表示为3DPGF @ ITO。在该研究中,在ITO玻璃表面上合成聚酰亚胺层,不仅是用作3DPGFS原位生长的牺牲前体,而且用作用于有效分离3DPGFS工作区域和ITO接触垫的钝化层。重要的是,ITO表面上的激光诱导的3DPGFS表现出由具有大表面积和丰富的边缘平面缺陷位点的互连的多层石墨烯片组成的3D层次和大孔架构。这些吸引力的功能使得提出的3DPGF @ ITO电极,在传统的商业电极上具有显着改善的电化学性能。最后,在其三元混合物中成功地施加为工作电极以选择性地检测三个重要的生物,即抗坏血酸,多巴胺和尿酸,以具有高分辨率的氧化电位。因此,我们设想3DPGF @ ITO电极将开放高度有前途的视角,以便开发基于电极基(生物)传感器。

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