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聚吡咯包裹的碳纳米管复合膜涂覆在重氮改性的柔性 ITO 片上用于重金属离子的电化学分析。

Polypyrrole-Wrapped Carbon Nanotube Composite Films Coated on Diazonium-Modified Flexible ITO Sheets for the Electroanalysis of Heavy Metal Ions.

机构信息

Faculté des Sciences, Université Cheikh Anta Diop, BP 5005 Dakar-Fann, Senegal.

Laboratoire Géomatériaux et Environnement, Université Paris-Est, 5 Bd. Descartes, CEDEX 2, 77454 Marne-la-Vallée, France.

出版信息

Sensors (Basel). 2020 Jan 21;20(3):580. doi: 10.3390/s20030580.

Abstract

Highly sensitive multicomponent materials designed for the recognition of hazardous compounds request control over interfacial chemistry. The latter is a key parameter in the construction of the sensing (macro) molecular architectures. In this work, multi-walled carbon nanotubes (CNTs) were deposited on diazonium-modified, flexible indium tin oxide (ITO) electrodes prior to the electropolymerization of pyrrole. This three-step process, including diazonium electroreduction, the deposition of CNTs and electropolymerization, provided adhesively-bonded, polypyrrole-wrapped CNT composite coatings on aminophenyl-modified flexible ITO sheets. The aminophenyl (AP) groups were attached to ITO by electroreduction of the in-situ generated aminobenzenediazonium compound in aqueous, acidic medium. For the first time, polypyrrole (PPy) was electrodeposited in the presence of both benzenesulfonic acid (dopant) and ethylene glycol-bis(2-aminoethylether)-tetraacetic acid (EGTA), which acts as a chelator. The flexible electrodes were characterized by XPS, Raman and scanning electron microscopy (SEM), which provided strong supporting evidence for the wrapping of CNTs by the electrodeposited PPy. Indeed, the CNT average diameter increased from 18 ± 2.6 nm to 27 ± 4.8, 35.6 ± 5.9 and 175 ± 20.1 after 1, 5 and 10 of electropolymerization of pyrrole, respectively. The PPy/CNT/NH-ITO films generated by this strategy exhibit significantly improved stability and higher conductivity compared to a similar PPy coating without any embedded CNTs, as assessed by from electrochemical impedance spectroscopy measurements. The potentiometric response was linear in the 10-3 × 10 mol L Pb(II) concentration range, and the detection limit was 2.9 × 10 mol L at S/N = 3. The EGTA was found to drastically improve selectivity for Pb(II) over Cu(II). To account for this improvement, the density functional theory (DFT) was employed to calculate the EGTA-metal ion interaction energy, which was found to be -374.6 and -116.4 kJ/mol for Pb(II) and Cu(II), respectively, considering solvation effects. This work demonstrates the power of a subtle combination of diazonium coupling agent, CNTs, chelators and conductive polymers to design high-performance electrochemical sensors for environmental applications.

摘要

设计用于识别危险化合物的高灵敏度多组分材料需要控制界面化学。后者是构建传感(宏观)分子结构的关键参数。在这项工作中,多壁碳纳米管 (CNT) 沉积在重氮改性的柔性氧化铟锡 (ITO) 电极上,然后进行吡咯的电聚合。包括重氮电化学还原、CNT 沉积和电聚合在内的这三步过程,在氨基苯基改性的柔性 ITO 薄片上提供了粘附键合的聚吡咯包裹的 CNT 复合涂层。氨基苯基 (AP) 基团通过在水性酸性介质中电化学还原原位生成的氨基苯重氮化合物而连接到 ITO 上。首次在苯磺酸(掺杂剂)和乙二醇双(2-氨基乙基醚)-四乙酸(EGTA)存在下电沉积聚吡咯,EGTA 作为螯合剂。柔性电极通过 XPS、拉曼和扫描电子显微镜 (SEM) 进行了表征,为 CNT 被电沉积的 PPy 包裹提供了有力的支持证据。事实上,在 1、5 和 10 次聚合吡咯后,CNT 的平均直径分别从 18 ± 2.6nm 增加到 27 ± 4.8nm、35.6 ± 5.9nm 和 175 ± 20.1nm。与没有任何嵌入 CNT 的类似 PPy 涂层相比,通过这种策略生成的 PPy/CNT/NH-ITO 薄膜在电化学阻抗谱测量评估的稳定性和电导率方面表现出显著提高。在 10-3×10 mol L Pb(II)浓度范围内,电位响应呈线性,检测限为 2.9×10 mol L,信噪比为 3。发现 EGTA 可显著提高对 Pb(II)相对于 Cu(II)的选择性。为了解释这种改进,采用密度泛函理论 (DFT) 计算了 EGTA-金属离子相互作用能,考虑到溶剂化效应,发现对于 Pb(II)和 Cu(II),分别为-374.6 和-116.4kJ/mol。这项工作展示了巧妙结合重氮偶联剂、CNT、螯合剂和导电聚合物的力量,用于设计用于环境应用的高性能电化学传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f70/7037355/e63461eeafa1/sensors-20-00580-sch001.jpg

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