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基于部分还原氧化石墨烯-金纳米棒复合材料的具有改进传感性能的生物电极。

Partially reduced graphene oxide-gold nanorods composite based bioelectrode of improved sensing performance.

作者信息

Nirala Narsingh R, Abraham Shiju, Kumar Vinod, Pandey Shobhit A, Yadav Umakant, Srivastava Monika, Srivastava S K, Singh Vidya Nand, Kayastha Arvind M, Srivastava Anchal, Saxena Preeti S

机构信息

Department of Zoology, Banaras Hindu University, Varanasi 221005, India.

Department of Physics, Banaras Hindu University, Varanasi 221005, India.

出版信息

Talanta. 2015 Nov 1;144:745-54. doi: 10.1016/j.talanta.2015.05.059. Epub 2015 Jul 8.

Abstract

The present work proposes partially reduced graphene oxide-gold nanorods supported by chitosan (CH-prGO-AuNRs) as a potential bioelectrode material for enhanced glucose sensing. Developed on ITO substrate by immobilizing glucose oxidase on CH-prGO-AuNRs composite, these CH-prGO-AuNRs/ITO bioelectrodes demonstrate high sensitivity of 3.2 µA/(mg/dL)/cm(2) and linear range of 25-200 mg/dL with an ability to detect as low as 14.5 mg/dL. Further, these CH-prGO-AuNRs/ITO based electrodes attest synergistiacally enhanced sensing properties when compared to simple graphene oxide based CH-GO/ITO electrode. This is evident from one order higher electron transfer rate constant (Ks) value in case of CH-prGO-AuNRs modified electrode (12.4×10(-2) cm/s), in contrast to CH-GO/ITO electrode (6×10(-3) cm/s). Additionally, very low Km value [15.4 mg/dL(0.85 mM)] ensures better binding affinity of enzyme to substrate which is desirable for good biosensor stability and resistance to environmental interferences. Hence, with better loading capacity, kinetics and stability, the proposed CH-prGO-AuNRs composite shows tremendous potential to detect several bio-analytes in the coming future.

摘要

本研究提出了壳聚糖负载的部分还原氧化石墨烯-金纳米棒(CH-prGO-AuNRs)作为一种潜在的生物电极材料,用于增强葡萄糖传感。通过将葡萄糖氧化酶固定在CH-prGO-AuNRs复合材料上,在ITO基底上制备了这些CH-prGO-AuNRs/ITO生物电极,其表现出3.2 μA/(mg/dL)/cm²的高灵敏度和25-200 mg/dL的线性范围,检测下限低至14.5 mg/dL。此外,与基于简单氧化石墨烯的CH-GO/ITO电极相比,这些基于CH-prGO-AuNRs/ITO的电极协同增强了传感性能。这从CH-prGO-AuNRs修饰电极(12.4×10⁻² cm/s)的电子转移速率常数(Ks)值比CH-GO/ITO电极(6×10⁻³ cm/s)高一个数量级可以明显看出。此外,非常低的Km值[15.4 mg/dL(0.85 mM)]确保了酶与底物具有更好的结合亲和力,这对于良好的生物传感器稳定性和抗环境干扰能力是理想的。因此,凭借更好的负载能力、动力学和稳定性,所提出的CH-prGO-AuNRs复合材料在未来检测多种生物分析物方面显示出巨大潜力。

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