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Poly (brilliant cresyl blue)-reduced graphene oxide modified activated GCE for nitrite detection: Analyzing the synergistic interactions through experimental and computational study

机译:聚(辉煌番茄酯蓝) - Reduced氧化石墨烯氧化物改性活化的GCE用于亚硝酸盐检测:通过实验和计算研究分析协同相互作用

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In this article, theoretical and computational (CP) analysis were carried out on the experimental data for the nonenzymatic oxidation of nitrite at the modified electrode to better understand the underlying chemistry. We studied the kinetics of the electron transfer process through various electroanalytical techniques and simulated the cyclic voltammetry (CV) data using Butler-Volmer equation. The CP methods were used for understanding the molecular interaction processes at the electrode-electrolyte interface. The modified electrodes were developed by the electrodeposition of poly (brilliant cresyl blue) (PBCP) on an electrochemically reduced graphene oxide (ERGO) at the activated glassy carbon electrode (AGCE) (AGCE/ERGO/PBCB). The AGCE/ERGO/PBCB sensor was characterized through electrochemical and electron microscopy methods. Analysis of the characterization data supported our assumption, that AGCE is the better platform for the optimal electrochemical reduction of GO compared to the GCE for the purpose of the electropolymerization process. Simulated CV showed that the oxidation process followed a 2e(-) transfer pathway, but the electron transfer took place in a step wise manner. While, CP data revealed that the AGCE, ERGO, and PBCB interacted with each other through the paralleldisplaced and sandwich types pi - pi stacking, and electrostatic interactions. H center dot center dot center dot O-H, and H center dot center dot center dot N-H hydrogen bonds between the functional groups of AGCE, and ERGO also promoted the electron transfer process. The AGCE/ERGO/PBCB was then used for the nonenzymatic detection of the nitrite species in the acidic medium using amperometric and CV techniques. The sensor was also tested for real sample analysis. (c) 2020 Elsevier Ltd. All rights reserved.
机译:在本文中,对修饰电极在修饰电极上的亚硝酸盐的非酶氧化的实验数据中进行了理论和计算(CP)分析,以更好地了解潜在的化学。我们通过各种电解化技术研究了电子转移过程的动力学,并使用Butler-Volmer方程模拟了循环伏安法(CV)数据。 CP方法用于理解电极 - 电解质界面处的分子相互作用过程。通过在活化的玻璃碳电极(AgCE)(AgCE / ERGO / PBCB)的电化学还原的石墨烯(ERGO)上的聚(辉煌番茄蓝)(PBCP)的电沉积来开发改性电极。 AGCE / ERGO / PBCB传感器的特征在于电化学和电子显微镜方法。对所表征数据的分析支持我们的假设,即AGCE是与GCE相比最佳电化学减少的更好平台,以用于电聚合过程的目的。模拟的CV显示氧化过程跟随2E( - )转移途径,但电子转移以步骤明智的方式进行。虽然,CP数据显示AGCE,ERGO和PBCB通过视差倒置和夹层堆叠和静电相互作用彼此相互作用。 H中心点中心点中心点O-H和H中心点中心点中心点N-H氢键在AGCE的官能团之间,也促进了电子转移过程。然后使用AGCE / ERGO / PBCB用于使用浓度和CV技术进行酸性介质中亚硝酸盐物质的非酶检测。该传感器还测试了真实样本分析。 (c)2020 elestvier有限公司保留所有权利。

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