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基于水相介质的方法制备由氧化石墨烯和 Pt 黑组成的生物传感器平台。

An aqueous media based approach for the preparation of a biosensor platform composed of graphene oxide and Pt-black.

机构信息

Birck-Bindley Physiological Sensing Facility, Purdue University, 1203 West State Street, West Lafayette, IN 47907, USA.

出版信息

Biosens Bioelectron. 2012 Oct-Dec;38(1):314-20. doi: 10.1016/j.bios.2012.06.007. Epub 2012 Jun 15.

Abstract

The combination of Pt nanoparticles and graphene was more effective in enhancing biosensing than either nanomaterial alone according to previous reports. Based on the structural similarities between water soluble graphene oxide (GrO(x)) and graphene, we report the fabrication of an aqueous media based GrO(x)/Pt-black nanocomposite for biosensing enhancement. In this approach GrO(x) acted as a nanoscale molecular template for the electrodeposition of Pt-black, an amorphously nanopatterned isoform of platinum metal. Scanning electron microscopy (SEM) images and energy-dispersive X-ray spectroscopy (EDS) showed that Pt-black was growing along GrO(x). The effective surface area and electrocatalytic activity towards H(2)O(2) oxidation of GrO(x)/Pt-black microelectrodes were significantly higher than for Pt-black microelectrodes. When used to prepare a bio-nanocomposite based on protein functionalization with the enzyme glucose oxidase (GOx), the GrO(x)/Pt-black microbiosensors exhibited improved sensitivity over the Pt-black microbiosensors. This suggested that the GrO(x)/Pt-black nanocomposite facilitated an increase in electron transfer, and/or minimized mass transport limitations as compared to Pt-black used alone. Glucose microbiosensors based on GrO(x)/Pt-black exhibited high sensitivity (465.9 ± 48.0 nA/mM), a low detection limit of 1 μM, a linear response range of 1 μM-2mM, and response time of ≈ 4s. Additionally the sensor was stable and highly selective over potential interferents.

摘要

根据之前的报道,Pt 纳米颗粒和石墨烯的组合比单独使用任何一种纳米材料都更有效地增强生物传感。基于水溶性氧化石墨烯 (GrO(x)) 和石墨烯之间的结构相似性,我们报告了在基于水的介质中制造 GrO(x)/Pt 黑纳米复合材料以增强生物传感。在这种方法中,GrO(x) 充当 Pt 黑的纳米级分子模板,Pt 黑是铂金属的非晶纳米图案化同素异形体。扫描电子显微镜 (SEM) 图像和能谱 (EDS) 显示 Pt 黑沿着 GrO(x)生长。GrO(x)/Pt 黑微电极的有效表面积和对 H(2)O(2)氧化的电催化活性明显高于 Pt 黑微电极。当用于制备基于蛋白质功能化的生物纳米复合材料与酶葡萄糖氧化酶 (GOx) 时,GrO(x)/Pt 黑微生物传感器的灵敏度高于 Pt 黑微生物传感器。这表明与单独使用的 Pt 黑相比,GrO(x)/Pt 黑纳米复合材料促进了电子转移的增加,和/或最小化了质量传输限制。基于 GrO(x)/Pt 黑的葡萄糖微生物传感器具有高灵敏度 (465.9 ± 48.0 nA/mM)、低检测限 1 μM、线性响应范围 1 μM-2mM 和响应时间约为 4s。此外,该传感器在潜在干扰物方面具有稳定性和高度选择性。

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