首页> 外文期刊>Journal of Colloid and Interface Science >Electrospun CuO-ZnO nanohybrid: Tuning the nanostructure for improved amperometric detection of hydrogen peroxide as a non-enzymatic sensor
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Electrospun CuO-ZnO nanohybrid: Tuning the nanostructure for improved amperometric detection of hydrogen peroxide as a non-enzymatic sensor

机译:Electromun CuO-ZnO纳米嗜含量:调节纳米结构以改善过氧化氢的水平检测作为非酶促传感器

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摘要

Hydrogen peroxide (H2O2) is a by-product of some biochemical processes which is catalyzed by enzymes such as glucose oxidase (GOx), cholesterol oxidase (ChoOx), etc and its overproduction in living cells can trigger cancer growth and various diseases. Therefore, H2O2 sensing is of great importance in the determination of diseases as well as industries and environmental health plans. We produced ZnO-CuO nanofibers by electrospinning method for non-enzymatic electrochemical H2O2 sensing. The sensing properties of the carbon paste electrode (CPE) modified with ZnO (0.3 wt%)/CuO (0.7 wt%) nano-fibers (named as ZnO3-CuO7) for detection of H2O2 were explored in phosphate-buffered saline (PBS) at pH similar to 7.4 solution. The ZnO3-CuO7 nanofiber exhibited the lowest charge transfer resistance and the highest electrocatalytic performance among other modified electrodes for detection of H2O2 and considered as an optimized sample. The effect of scan rate and H2O2 concentration in the reduction process were also investigated by cyclic voltammetry (CV) and the mechanism for the electrochemical reaction of H2O2 at the surface of the optimized electrode was studied. The diffusion coefficient of H2O2 and the catalytic rate constant were evaluated by chronoamperometry as 1.65 x 10(-5) cm(2) s(-1) and 6 x 10(3) cm(3) mol(-1) s(-1), respectively. Furthermore, amperometric detection of H2O2 with a low detection limit of 2.4 mu M and a wide linear range of 3 to 530 mu M were obtained. Meanwhile, the optimized electrode displayed no recognizable response towards some biomolecules such as ascorbic acid, uric acid, dopamine and glucose. The obtained results confirmed that the modified electrode shows high sensitivity and selectivity as a H2O2 biosensor with improved reproducibility and stability. (C) 2019 Elsevier Inc. All rights reserved.
机译:过氧化氢(H 2 O 2)是一些生化方法的副产物,其催化酶如葡萄糖氧化酶(GOX),胆固醇氧化酶(CHOOX)等,其在活细胞中的过度生产可以引发癌症生长和各种疾病。因此,H2O2感测在确定疾病以及行业和环境健康计划方面具有重要意义。我们通过静电纺丝方法生产ZnO-CuO纳米纤维,用于非酶促电化学H2O2感测。用ZnO(0.3wt%)/ CuO(0.7wt%)纳米纤维(0.7wt%)纳米纤维(命名为ZnO3-CuO7)改性的碳糊电极(CPE)的感测性质在磷酸盐缓冲盐水(PBS)中探讨了检测H2O2在pH下类似于7.4溶液。 ZnO3-CuO7纳米纤维在其他改性电极中表现出最低电荷转移电阻和最高的电催化性能,以检测H2O2并被认为是优化的样品。通过循环伏安法(CV)研究了扫描速率和H 2 O 2浓度在还原过程中的影响,研究了H2O2在优化电极表面的电化学反应的机制。通过计量萌相术评估H 2 O 2的扩散系数和催化速率常数为1.65×10( - 5)cm(2)s(2)s(-1)和6×10(3)cm(3)mol(-1)s( - 1)分别。此外,获得了低检测限2.4μm和3至530μm的宽线性范围的H2O2的电流检测。同时,优化电极对某些生物分子显示出没有可识别的反应,例如抗坏血酸,尿酸,多巴胺和葡萄糖。所得结果证实,改性电极具有高灵敏度和选择性,作为H 2 O 2生物传感器,具有改善的再现性和稳定性。 (c)2019 Elsevier Inc.保留所有权利。

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