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Electrochemical investigation and stripping voltammetric determination of captopril at CuO nanoparticles/multi-wall carbon nanotube nanocomposite electrode in tablet and urine samples

机译:片剂和尿液中CuO纳米颗粒/多壁碳纳米管纳米复合电极的电化学研究及溶出伏安法测定卡托普利

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摘要

Determinations of captopril were made using a nanocomposite electrode modified with CuO nanoparticles (CuO NPs) and multiwall carbon nanotubes (MWCNTs). The voltammetric results indicate that MWCNT can remarkably enhance electrocatalytic activity toward the oxidation of captopril in buffer solution. Characteristics of the electrochemical responses of the modified electrode toward captopril were investigated by cyclic voltammetry (CV), differential pulse voltammetry (DPV) and chronoamperometry. The parameters of charge transfer rate constant (k(s)), charge transfer coefficient (alpha), diffusion coefficient (D), electrode surface area (A), and catalytic rate constant (k(h)) were determined, and the results were investigated. The electrocatalytic oxidation current of captopril was found to have a linear relation to concentration over the range 4.6 x 10(-7) M-1 x 10(-5) M (n = 7) determined by the DPASV method. The limit of detection at S/ N ratio of 3 was 2.9 x 10(-7) M (n = 6), and the relative standard deviation was 4.4% at the 4 x 10(-6) M level (n = 6). The prepared modified electrode has the advantages of high sensitivity, low detection limit in comparison with some reported methods, simple preparation and regeneration of the electrode surface by simple polishing that enables acceptable reproducibility. The modified electrode can be applied to determine captopril in tablets and urine samples with satisfactory results.
机译:卡托普利的测定使用经CuO纳米颗粒(CuO NPs)和多壁碳纳米管(MWCNTs)修饰的纳米复合电极进行。伏安法结果表明,MWCNT可以显着增强对缓冲溶液中卡托普利氧化的电催化活性。通过循环伏安法(CV),微分脉冲伏安法(DPV)和计时电流法研究了修饰电极对卡托普利的电化学响应特征。确定电荷转移速率常数(k(s)),电荷转移系数α,扩散系数(D),电极表面积(A)和催化速率常数(k(h))的参数,并得出结果被调查了。发现卡托普利的电催化氧化电流与通过DPASV方法测定的4.6 x 10(-7)M-1 x 10(-5)M(n = 7)范围内的浓度呈线性关系。信噪比为3时的检出限为2.9 x 10(-7)M(n = 6),在4 x 10(-6)M的水平下(n = 6)的相对标准偏差为4.4%。 。所制备的修饰电极与某些已报道的方法相比具有灵敏度高,检测限低的优点,通过简单的抛光就可以容易地制备和再生电极表面,从而能够实现可接受的再现性。修饰的电极可用于测定片剂和尿液样品中的卡托普利,结果令人满意。

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