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基于无金属硫掺杂石墨相氮化碳修饰玻碳电极的电化学催化剂用于增强药物制剂和生物样品中奥美拉唑的电化学测定。

Metal-free Sulfur-doped graphitic carbon nitride-modified GCE-based electrocatalyst for the enhanced electrochemical determination of Omeprazole in Drug formulations and Biological Samples.

机构信息

Department of Inorganic Chemistry, University of Madras, Chennai, India.

Institute of Nano Electronic Engineering, Universiti Malaysia Perlis, Perlis, Malaysia.

出版信息

Biotechnol Appl Biochem. 2022 Dec;69(6):2766-2779. doi: 10.1002/bab.2321. Epub 2022 Mar 25.

DOI:10.1002/bab.2321
PMID:35287249
Abstract

This study presents a novel sulfur-doped graphitic carbon nitride (S@g-C N ) with a wider potential range as electrocatalyst for electrochemical sensor application. The S@g-C N nanosheets were successfully prepared with a ball milling method by mixing appropriate molar concentration required precursors. The as-synthesized heteroatom-doped graphitic carbon nitride is characterized by spectroscopic techniques including PL, DRS-UV, FT-IR, and Brunauer-Emmett-Teller equation. The morphological features were studied by FE-SEM and HR-TEM analysis. Chit-S@g-C N -modified glassy carbon electrode (GCE) was employed for the electrochemical detection of omeprazole (OMZ) use in drug formulations. We have noted an oxidation peak current response at a potential of +0.8 V versus Ag/AgCl in PBS medium (0.1 M, pH 7.0). Differential pulse voltammetry amperometry experimental method can be used to measure the concentration of OMZ for quantitative studies in known samples. Under the optimized experimental condition, the calibration plot was constructed by plotting the peak currents versus OMZ in the linear ranges from 6.0 × 10 to 26 × 10  M. The linear regression equation is estimated to be I (μA) = 0.9518 (C/μM) + 0.3340 with a good correlation coefficient of 0.9996. The lower determination limit was found to be 20 nM and the current sensitivity was calculated (31.722 μA μM  cm ). The developed sensor was utilized successfully to determine the OMZ concentration in drug formulations and biological fluids. These results revealed that the Chit-S@g-C N -modified GCE showed excellent electroanalytical performance for the detection of OMZ at a low LOD, wider linear range, high sensitivity, good reproducibility, long-term storage stability, and selectivity with an acceptable relative standard deviation value.

摘要

本研究提出了一种新型的硫掺杂石墨相氮化碳(S@g-CN),作为电化学传感器应用的电催化剂,具有更宽的电位范围。S@g-CN 纳米片是通过混合适当摩尔浓度的所需前体制备球磨方法成功制备的。所合成的杂原子掺杂石墨相氮化碳通过包括光致发光(PL)、DRS-UV、FT-IR 和 Brunauer-Emmett-Teller 方程在内的光谱技术进行了表征。形态特征通过 FE-SEM 和 HR-TEM 分析进行了研究。壳聚糖-S@g-CN-修饰的玻碳电极(GCE)用于在药物制剂中检测奥美拉唑(OMZ)的电化学检测。我们注意到在 PBS 介质(0.1 M,pH 7.0)中相对于 Ag/AgCl 的+0.8 V 处有一个氧化峰电流响应。差分脉冲伏安法安培法实验方法可用于在已知样品中进行 OMZ 的定量研究以测量浓度。在优化的实验条件下,通过绘制 OMZ 在 6.0×10 至 26×10 范围内的峰值电流与 OMZ 的线性关系来构建校准图。线性回归方程估计为 I(μA)= 0.9518(C/μM)+ 0.3340,相关系数良好,为 0.9996。发现测定下限低至 20 nM,计算出电流灵敏度为 31.722 μA μM cm。该开发的传感器成功用于测定药物制剂和生物流体中的 OMZ 浓度。这些结果表明,壳聚糖-S@g-CN 修饰的 GCE 在低检测限、更宽的线性范围、高灵敏度、良好的重现性、长期储存稳定性和选择性方面表现出优异的电分析性能,具有可接受的相对标准偏差值。

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