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基于电沉积Cu-BTC微孔膜的传感界面用于对止痛药扑热息痛进行电化学检测。

Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol.

作者信息

Tien Dat Nguyen, Ngoc Tien Nguyen, Ngan Nguyen Thi Thanh, Thi Thu Vu

机构信息

Hanoi University of Science and Technology, 1 Dai Co Viet, Hanoi, Vietnam.

Graduate University of Science and Technology (GUST), Vietnam Academy of Science and Technology (VAST), 18 Hoang Quoc Viet, Hanoi, Vietnam.

出版信息

Analyst. 2023 Apr 11;148(8):1777-1785. doi: 10.1039/d3an00110e.

DOI:10.1039/d3an00110e
PMID:36919959
Abstract

The use of metal-organic framework materials in electrochemical sensors has been gaining more attention in the last few years due to their highly porous structure and electrocatalytic activity. In this work, a novel paracetamol electrochemical sensor based on a Cu-BTC microporous film electrochemically grown onto glassy carbon electrode was introduced. The Cu-BTC film was deposited directly onto the electrode surface an electrochemical approach using a EtN probase to accelerate the growth of Cu-BTC. The fast growth enables the formation of a microporous structure with better adsorption of targeted molecules. The two-dimensional arrangement of units made of dimeric copper cations coordinated to carboxylate anions helped to improve the electrochemical conductivity and electron transfer rate at the electrode surface (charge transfer resistance was dramatically decreased from 2173 Ω to 86 Ω). The electrocatalytic activity of copper ion centers in Cu-BTC was studied with peak separation between oxidation and reduction peaks of pseudo-redox paracetamol molecules much shortened (from 629 mV to 87 mV). Consequently, the sensing parameters (sensitivity and detection limit) of the as-prepared paracetamol sensor were considerably improved. Further works need to be conducted on tailoring ligand structure in order to much improve the electrical conductivity of metal-organic frameworks for sensing purposes.

摘要

近年来,金属有机骨架材料因其高度多孔的结构和电催化活性,在电化学传感器中的应用越来越受到关注。在这项工作中,介绍了一种基于在玻碳电极上电化学生长的Cu-BTC微孔膜的新型对乙酰氨基酚电化学传感器。通过电化学方法,使用EtN碱加速Cu-BTC的生长,将Cu-BTC膜直接沉积在电极表面。快速生长能够形成具有更好靶向分子吸附性的微孔结构。由与羧酸根阴离子配位的二聚铜阳离子组成的单元的二维排列有助于提高电极表面的电化学导电性和电子转移速率(电荷转移电阻从2173Ω显著降低到86Ω)。研究了Cu-BTC中铜离子中心的电催化活性,伪氧化还原对乙酰氨基酚分子的氧化峰和还原峰之间的峰间距大大缩短(从629mV缩短到87mV)。因此,所制备的对乙酰氨基酚传感器的传感参数(灵敏度和检测限)得到了显著改善。为了进一步提高用于传感目的的金属有机骨架的电导率,需要在定制配体结构方面开展进一步的工作。

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