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Electrochemical behavior and simultaneous determination of catechol, resorcinol, and hydroquinone using thermally reduced carbon nano-fragment modified glassy carbon electrode

机译:热还原碳纳米片段修饰玻碳电极的电化学行为和邻苯二酚,间苯二酚和对苯二酚的同时测定

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摘要

The electrochemical behaviors and simultaneous determination of three dihydroxybenzene isomers, i.e., catechol (CC), resorcinol (RC), and hydroquinone (HQ), are studied using a thermally reduced carbon nano-fragment modified glassy carbon electrode (CNF/GCE). The soluble CNF modifier with unique micro-ano-structure and abundant edges and defective sites is prepared by chemically oxidizing graphite powders, ultrasonically crushing, and thermally reducing treatment in turn. It is shown that the oxidation peak currents of CC, RC, and HQ at the CNF/GCE are improved about 1.74, 2.88, and 1.05 times compared to that of the GCE. The diffusion process in bulk solution controls the electrochemical reaction of CC, RC, and HQ, and their reversible electrochemical process involves equal numbers of protons and electrons. Based on the enhanced electrocatalytic activity and enlarged separation of the anodic peak potential towards three dihydroxybenzene isomers at the CNF/GCE, the simultaneous differential pulse voltammetry (DPV) determination of CC, RC, and HQ, with detection limits (S/N = 3) of 5.0 x 10(-7) mol L-1, 8.0 x 10(-7) mol L-1 and 4.0 x 10(-7) mol L-1, respectively, are obtained. The CNF/GCE also indicates high selectivity, stability, and reproducibility, and is comparable with results of high-performance liquid chromatography in real samples, clearly indicating its applicability.
机译:使用热还原碳纳米片段修饰的玻碳电极(CNF / GCE)研究了三种二羟基苯异构体(儿茶酚(CC),间苯二酚(RC)和对苯二酚(HQ))的电化学行为并同时测定。通过化学氧化石墨粉,超声破碎和依次进行热还原处理,可制得具有独特的微/纳米结构,边缘和缺陷部位丰富的可溶性CNF改性剂。结果表明,与GCE相比,CNF / GCE的CC,RC和HQ的氧化峰值电流分别提高了约1.74、2.88和1.05倍。本体溶液中的扩散过程控制CC,RC和HQ的电化学反应,它们的可逆电化学过程涉及相等数量的质子和电子。基于CNF / GCE上增强的电催化活性和对三个二羟基苯异构体的阳极峰电位的扩大分离,同时采用差示脉冲伏安法(DPV)测定CC,RC和HQ,并具有检测限(S / N = 3 )分别获得5.0 x 10(-7)mol L-1、8.0 x 10(-7)mol L-1和4.0 x 10(-7)mol L-1。 CNF / GCE还显示出高选择性,稳定性和可重复性,并且可与实际样品中的高效液相色谱法相媲美,清楚地表明了其适用性。

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