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一种基于新型稳定的蚕茧丝衍生金属碳复合材料的高效一次性灵活电化学传感器。

An efficient disposable and flexible electrochemical sensor based on a novel and stable metal carbon composite derived from cocoon silk.

机构信息

Research Institute for Soft Matter and Biomimetics, Fujian Provincial Key Laboratory for Soft Functional Materials Research, Department of Physics, College of Materials, Xiamen University, Xiamen, 361005, China; Department of Chemistry, M. D. College, Parel, Mumbai, 400012, India.

Research Institute for Soft Matter and Biomimetics, Fujian Provincial Key Laboratory for Soft Functional Materials Research, Department of Physics, College of Materials, Xiamen University, Xiamen, 361005, China.

出版信息

Biosens Bioelectron. 2019 Oct 1;142:111595. doi: 10.1016/j.bios.2019.111595. Epub 2019 Aug 12.

Abstract

The present work reports cocoon silk fibroin (SF)as a unique precursor for the in-situ fabrication of well-engineered, stable and leach free gold nanoparticle doped carbonaceous materials (AuNPs@NSC). In principle, at the molecular level, SF has a singular structure that can be converted to a N-doped aromatic carbon structure by heat treatment. The electrochemical properties of the prepared nanocomposite were examined by cyclic voltammetry and differential pulse voltammetry. A flexible three electrode sensor system with AuNPs@NSC-modified working electrodes has been developed, to achieve easy operation and quick and accurate responses. The electrochemical results showed that the sensor made by the AuNPs@NSC-modified working electrode demonstrated high sensitivity for the detection of rutin, which is attributed to the good distribution of the AuNPs on the carbon matrix. Using differential pulse voltammetry (DPV), the AuNPs@NSC electrode was found to have a linear response in the range of 0.11-250 μM and a comparably low limit of detection of 0.02 μM (S/N = 3). To ensure the accuracy and applicability of the sensors, the concentration of rutin in the commodity (rutin capsule, 10 mg/capsule) was examined, and the sensor provided high precision with a minimum relative error (RE) of 3.3%. These findings suggest that AuNPs@NSC can be considered to be a potential electrode material for the development of electrochemical devices and has great potential in extending their application to the flexible sensor field.

摘要

本工作报道了茧丝素纤维(SF)作为独特的前体,用于原位制备具有良好工程设计、稳定且无浸出的金纳米颗粒掺杂碳质材料(AuNPs@NSC)。从原理上讲,在分子水平上,SF 具有独特的结构,可以通过热处理转化为掺杂氮的芳族碳结构。通过循环伏安法和差分脉冲伏安法研究了制备的纳米复合材料的电化学性质。已经开发了具有 AuNPs@NSC 修饰工作电极的柔性三电极传感器系统,以实现易于操作和快速准确的响应。电化学结果表明,由 AuNPs@NSC 修饰工作电极制成的传感器对芦丁的检测具有高灵敏度,这归因于 AuNPs 在碳基质上的良好分布。使用差分脉冲伏安法(DPV),发现 AuNPs@NSC 电极在 0.11-250 μM 的范围内具有线性响应,并且检测限相对较低,为 0.02 μM(S/N=3)。为了确保传感器的准确性和适用性,检查了商品(芦丁胶囊,10mg/胶囊)中芦丁的浓度,传感器提供了高精度,最小相对误差(RE)为 3.3%。这些发现表明,AuNPs@NSC 可以被认为是开发电化学器件的潜在电极材料,并且在将其应用扩展到柔性传感器领域方面具有巨大潜力。

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