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带有尖状铂纳米球的柔性石墨烯丝复合薄膜电极的制备与应用

Fabrication and application of flexible graphene silk composite film electrodes decorated with spiky Pt nanospheres.

作者信息

Liang Bo, Fang Lu, Hu Yichuan, Yang Guang, Zhu Qin, Ye Xuesong

机构信息

Biosensor National Special Laboratory, College of Biomedical Engineering and Instrument Science, Cyrus Tang Centre for Sensor Materials and Applications, Zhejiang University, Hangzhou 310027, PR China.

出版信息

Nanoscale. 2014 Apr 21;6(8):4264-74. doi: 10.1039/c3nr06057h.

Abstract

A free-standing graphene silk composite (G/S) film was fabricated via vacuum filtration of a mixed suspension of graphene oxide and silk fibres, followed by chemical reduction. Spiky structured Pt nanospheres were grown on the film substrate by cyclic voltammetry electrodeposition. The electrical and mechanical performance of a single graphene coated silk fibre was investigated. The conductivity of a single graphene coated silk fibre is 57.9 S m(-1). During 1000 bending measurements, the conductivity was stable and showed negligible variation. The G/S film has a sheet resistivity of 90 Ω □(-1) with a porous and hierarchical structure. The spiky Pt nanosphere decorated G/S film was directly used as a H₂O₂ electrode with a sensitivity of 0.56 mA mM(-1) cm(-2), a linear range of 0-2.5 mM and an ultralow detection limit of 0.2 μM (S/N = 3). A glucose biosensor electrode was further fabricated by enzyme immobilization. The results show a sensitivity of 150.8 μA mM(-1) cm(-2) and a low detection limit of 1 μM (S/N = 3) for glucose detection. The strategy of coating graphene sheets on a silk fibre surface provides a new approach for developing electrically conductive biomaterials, tissue engineering scaffolds, bendable electrodes, and wearable biomedical devices.

摘要

通过对氧化石墨烯和丝纤维的混合悬浮液进行真空过滤,随后进行化学还原,制备了一种独立的石墨烯丝复合材料(G/S)薄膜。通过循环伏安电沉积法在薄膜基底上生长出尖刺状结构的铂纳米球。研究了单根石墨烯包覆丝纤维的电学和力学性能。单根石墨烯包覆丝纤维的电导率为57.9 S m(-1)。在1000次弯曲测量过程中,电导率稳定,变化可忽略不计。G/S薄膜的方块电阻为90 Ω □(-1),具有多孔分级结构。尖刺状铂纳米球修饰的G/S薄膜直接用作H₂O₂电极,灵敏度为0.56 mA mM(-1) cm(-2),线性范围为0 - 2.5 mM,超低检测限为0.2 μM(S/N = 3)。通过酶固定化进一步制备了葡萄糖生物传感器电极。结果表明,该电极对葡萄糖检测的灵敏度为150.8 μA mM(-1) cm(-2),低检测限为1 μM(S/N = 3)。在丝纤维表面包覆石墨烯片的策略为开发导电生物材料、组织工程支架、可弯曲电极和可穿戴生物医学设备提供了一种新方法。

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