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基于导电聚合物和氨基功能化石墨烯量子点纳米复合材料修饰玻碳电极的汞离子超灵敏检测。

Ultrasensitive determination of mercury ions using a glassy carbon electrode modified with nanocomposites consisting of conductive polymer and amino-functionalized graphene quantum dots.

机构信息

Key Laboratory of Chemical Biology and Traditional Chinese Medicine Research (Ministry of Education of China), College of Chemistry and Chemical Engineering, Hunan Normal University, Changsha, 410081, People's Republic of China.

出版信息

Mikrochim Acta. 2020 Mar 9;187(4):210. doi: 10.1007/s00604-020-4191-1.

DOI:10.1007/s00604-020-4191-1
PMID:32152671
Abstract

A one-pot method based on cyclic voltammetric scan was used to fabricate a glassy carbon electrode modified with nanocomposites consisting of poly(thionine) and amino-functionalized graphene quantum dots (afGQDs). Under near-neutral conditions, the dye polymer was effectively oxidized by hydroxyl radicals (·OH) that were derived from the copper-catalyzed Fenton-like reaction, and the cathodic peak current on the modified electrode greatly increased. The reaction of Cu with thiourea (TU) and the generation of a complex, CuTU, led to the decrease of Cu/Cu species, which inhibited the Fenton-like reaction and reduced the electrochemical response change. Due to a displacement reaction, the addition of Hg into the HO-Cu-TU system resulted in the release of cuprous ions that benefited the Fenton-like reaction. Under the following optimal conditions: 6 mg mL afGQDs and the 25-cycle potential cycling for the fabrication of the modified electrode, pH 6.5, and the [Formula: see text] ratio of 1.0, the increasing extent of the cathodic peak current exhibited a good linear response to the logarithm of the Hg concentration in the range of 1 pM-1 μM with a detection limit of 0.6 pM. Mercury ions in a water sample were determined with good recovery, ranging from 97 to 103%. The investigation on the uptake of Hg into human vascular endothelial cells, HUVEC, shows that the cells incubated in the high-concentration glucose medium absorbed more mercury ions than HUVEC incubated in the normal medium. As a result, Hg could lead to the greater damage to the former. Graphical abstract.

摘要

一种基于循环伏安扫描的一锅法被用于制备玻碳电极,该电极修饰有由聚噻吩和氨基功能化石墨烯量子点(afGQDs)组成的纳米复合材料。在近中性条件下,染料聚合物被源自铜催化芬顿样反应的羟基自由基(·OH)有效氧化,并且在修饰电极上的阴极峰电流大大增加。Cu 与硫脲(TU)的反应以及 CuTU 配合物的生成导致 Cu/Cu 物种减少,这抑制了芬顿样反应并降低了电化学响应变化。由于取代反应,将 Hg 加入到 HO-Cu-TU 体系中导致亚铜离子的释放,这有利于芬顿样反应。在以下最佳条件下:6 mg mL afGQDs 和用于修饰电极制备的 25 个循环电位循环、pH 6.5 和[Formula: see text]比为 1.0,阴极峰电流的增加程度对 Hg 浓度在 1 pM-1 μM 范围内的对数表现出良好的线性响应,检测限为 0.6 pM。水样中的汞离子测定具有良好的回收率,范围从 97%到 103%。对人血管内皮细胞(HUVEC)中 Hg 摄取的研究表明,在高浓度葡萄糖培养基中孵育的细胞吸收的汞离子多于在正常培养基中孵育的 HUVEC。因此,Hg 可能会对前者造成更大的伤害。图表摘要。

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