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首页> 外文期刊>Journal of Electroanalytical Chemistry: An International Journal Devoted to All Aspects of Electrode Kinetics, Interfacial Structure, Properties of Electrolytes, Colloid and Biological Electrochemistry >Synergistic effect of reduced graphene oxide/azo-polymer layers on electrochemical performance and application as nonenzymatic chemiresistor sensors for detecting superoxide anion radicals
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Synergistic effect of reduced graphene oxide/azo-polymer layers on electrochemical performance and application as nonenzymatic chemiresistor sensors for detecting superoxide anion radicals

机译:石墨烯氧化物/偶氮聚合物层对电化学性能和应用作为非酶化学体传感器的协同作用及其检测超氧化物阴离子自由基

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The present paper describes a nonenzymatic chemiresistor sensor based on an azo-polymer and reduced graphene oxide (rGO) as a resistive platform for superoxide radical detection. The sensorial platform was prepared on layer-by-layer-assembled films of poly(azo-Bismarck Brown Y) and reduced graphene oxide by cyclic voltammetry. The nanocomposite film exhibited interesting synergetic properties based on the redox properties of the azo-polymer combined with the good electronic conductivity and stability of graphene. The electrical conductivity mechanism of the graphene-polymer was analyzed by electrochemical impedance and compared to that of an electrode coated with only polymer. The conductance properties of the interlayer formed by pi-pi stacking between the conjugated structure of the polymer chains and the structure of the graphene sheet are dependent on the applied potential of the system. The performance of the poly(azo-BBY)/rGO film as a chemiresistor material for the sensing of superoxide anions was evaluated by impedance measurements at the applied potential of +0.30 in PBS (7.4). The charge transfer resistance values change substantially in the presence of superoxide in solution. The effect of superoxide on the resistivity of the device is attributed to changes in the oxidation state of the polymer. The impedance measurements in real time (chrono-impedance) with the poly(azo-BBY)/rGO sensor with different superoxide concentrations revealed good linearity behavior between the real impedance and the superoxide anion concentration (0.12-2.6 mmol L-1) with a detection limit of 81.0 mu mol(-1).
机译:本文介绍了基于偶氮聚合物的非酶的化学体系传感器,并作为超氧化物自由基检测的电阻平台作为偶氮聚合物和还原的石墨烯(RGO)。通过环状伏安法在聚(Azo-Bismarck棕色Y)的层组组装膜上制备感觉平台,并通过循环伏安法将氧化石墨烯还原。纳米复合膜基于偶氮聚合物的氧化还原性能与石墨烯的良好电子导电性和稳定性相结合的氧化还原性能。通过电化学阻抗分析石墨烯聚合物的电导率机制,并与仅涂覆聚合物的电极的电导率相比。通过PI-PI堆叠在聚合物链的共轭结构和石墨烯片的结构之间形成的中间层的电导性质取决于系统的施加电位。通过在PBS(7.4)的施加电位的施加电位下的阻抗测量来评价聚(Azo-Bby)/ Rgo膜作为用于感测过超氧化物阴离子的化学晶体材料的性能。电荷转移电阻值基本上在溶液中的超氧化物存在下变化。超氧化物对器件电阻率的影响归因于聚合物的氧化状态的变化。具有不同超氧化物浓度的聚(Azo-BBY)/ RGO传感器的实时(计时阻抗)的阻抗测量显示了实际阻抗和超氧化物阴离子浓度(0.12-2.6mmol L-1)之间的良好线性行为检测限为81.0μmmol(-1)。

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