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电化学传感盐酸吡格列酮在 N 掺杂 r-GO 修饰商业电极上的应用。

Electrochemical sensing of pioglitazone hydrochloride on N-doped r-GO modified commercial electrodes.

机构信息

School of Materials Science and Technology, Indian Institute of Technology (Banaras Hindu University), Varanasi-221005, UP, India.

Department of Physics, Institute of Science, Banaras Hindu University, Varanasi - 221005, UP, India.

出版信息

Analyst. 2021 Jun 7;146(11):3578-3588. doi: 10.1039/d1an00224d. Epub 2021 Apr 29.

DOI:10.1039/d1an00224d
PMID:33913938
Abstract

In this paper, we explain the electrochemical sensing of commercially available pioglitazone hydrochloride (PIOZ) tablets on a nitrogen (N) doped r-GO (Nr-GO) modified commercial glassy carbon electrode (GCE) and a commercial screen printed graphite electrode (SPGE). Nr-GO is synthesized by the chemical reduction of graphene oxide (GO) and simultaneous insertion of an N-dopant by hydrazine monohydrate. Pristine GO itself is prepared by chemical exfoliation of bulk graphite. Upon chemical reduction, the exfoliated GO sheets restack together leaving behind the doped N-atom as evidenced by XRD and Raman spectroscopy. The N-atom exists in the pyrrolinic and pyridinic form at the edge of graphitic domains which is confirmed by XPS. The as-synthesized Nr-GO is used for the preparation of electro-active electrodes with the help of the GCE and SPGE. These electrodes have the capability to oxidize PIOZ by a diffusion dominated process as evidenced by the impedance spectroscopic technique. The differential pulse voltammetric responses of different concentrations of PIOZ are assessed over the Nr-GO modified GCE and SPGE, which exhibit better limits of detection (LODs) of 67 nM and 29 nM, respectively, compared to those from earlier reports. These assays exhibit non-interfering capability in the presence of various body interferents at pH = 7.0.

摘要

在本文中,我们解释了在氮(N)掺杂 r-GO(Nr-GO)修饰的商业玻碳电极(GCE)和商业丝网印刷石墨电极(SPGE)上对市售盐酸吡格列酮(PIOZ)片的电化学传感。Nr-GO 通过肼一水还原氧化石墨烯(GO)和同时插入 N 掺杂剂合成。原始 GO 本身是通过块状石墨的化学剥落制备的。化学还原后,剥落的 GO 片重新堆积在一起,留下掺杂的 N 原子,这一点可以通过 XRD 和拉曼光谱证实。N 原子以吡咯啉和吡啶形式存在于石墨域的边缘,这一点可以通过 XPS 证实。在 GCE 和 SPGE 的帮助下,使用合成的 Nr-GO 制备了电活性电极。这些电极具有通过扩散主导过程氧化 PIOZ 的能力,这一点可以通过阻抗光谱技术证明。在 Nr-GO 修饰的 GCE 和 SPGE 上评估了不同浓度 PIOZ 的差分脉冲伏安响应,与早期报道相比,它们的检测限(LOD)分别为 67 nM 和 29 nM。与早期报道相比,这些测定法在 pH = 7.0 时在存在各种身体干扰物的情况下具有非干扰能力。

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