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Anodic Oxidation and Amperometric Sensing of Hydrazine at a Glassy Carbon Electrode Modified with Cobalt (II) Phthalocyanine–cobalt (II) Tetraphenylporphyrin (CoPc-(CoTPP)4) Supramolecular Complex

机译:钴(II)酞菁-钴(II)四苯基卟啉(CoPc-(CoTPP)4)超分子配合物修饰的玻碳电极上肼的阳极氧化和安培感测

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摘要

This paper describes the electrocatalytic behaviour of a glassy carbon electrode (GCE) modified with cobalt(II)phthalocyanine (CoPc) complex peripherally tetrasubstituted with cobalt(II)tetraphenylporphyrin (CoTPP) complexes via ether linkages (i.e., CoPc-(CoTPP)4). The features of the immobilised pentamer were interrogated with cyclic voltammetry and electrochemical impedance spectroscopy (EIS) using [Fe(CN)6]3-/4- as redox probe revealed enhanced electron transfer properties with kapp ≈ 18 × 10-6 cms-1 compared to that of the bare GCE (4.7 × 10-6 cms-1). The viability of this supramolecular complex as a redox mediator for the anodic oxidation and sensitive amperometric determination of hydrazine in alkaline conditions is described. The electrocatalytic oxidation of hydrazine by GCE-CoPc-(CoTPP)4 was characterised with satisfactory catalytic current response with low non-Faradaic current (ca. 30 times lower than the bare GCE) and at much lower oxidation potential (ca. 300 mV lower than the bare GCE). A mechanism for the studied electrocatalytic reaction was proposed based on the spectrophotometric evidence that revealed the major involvement of the Co(III)/Co(II) redox couple of the central CoPc species rather than the CoTPP component of the pentamer. Rate constant for the anodic oxidation of hydrazine was estimated from chronoamperometry as ∼ 3×103 M-1s-1. The proposed amperometric sensor displayed excellent charateristics towards the determination of hydrazine in 0.2 M NaOH; such as low overpotentials (+100 mV vs Ag|AgCl), very fast amperometric response time (1 s), linear concentration range of up to 230 μM, with micromolar detection limit, high sensitivity and stability.
机译:本文描述了用钴(II)四苯基卟啉(CoTPP)配合物通过醚键(即CoPc-(CoTPP)4)外围四取代的钴(II)酞菁钴(CoPc)配合物修饰的玻碳电极(GCE)的电催化行为。 。 [Fe(CN)6] 3- / 4-通过循环伏安法和电化学阻抗谱(EIS)来研究固定的五聚体的特征,因为氧化还原探针显示增强的电子传递特性,kapp≈18 ×10 -6 cms -1 相比裸GCE(4.7×10 -6 cms -1 )。描述了这种超分子配合物作为氧化还原介体在碱性条件下进行阳极氧化和灵敏安培测定的可行性。 GCE-CoPc-(CoTPP)4对肼的电催化氧化具有令人满意的催化电流响应特性,具有低非法拉第电流(约为裸GCE的30倍),且氧化电位低得多(约低300 mV)。而不是裸露的GCE)。基于分光光度法的证据,提出了一种研究电催化反应的机理,该机理揭示了中心CoPc的Co (III) / Co (II)氧化还原对的主要参与种而不是五聚体的CoTPP组分。计时电流法估计肼的阳极氧化速率常数约为3×10 3 M -1 s -1 。拟议的安培传感器在0.2 M NaOH中测定肼具有优异的特性。如低电势(+100 mV vs Ag | AgCl),非常快的安培响应时间(1 s),线性浓度范围高达230μM,具有微摩尔检测极限,高灵敏度和稳定性。

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