IF 5.5 3区 工程技术 Q1 ENGINEERING, CHEMICAL
Ramadhass Keerthika Devi , Muthusankar Ganesan , Shen-Ming Chen , Ying Li , Hsiung-Lin Tu , Chih-Min Wang , Yeh-Fang Duann , Gopalakrishnan Gopu
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引用次数: 0

摘要

背景硝基咪唑衍生物作为抗生素被广泛应用于制药、医疗保健和畜牧业,作为潜在污染物对环境构成了严重威胁。工业排放会将这些化合物带入水源,即使是痕量残留,如替硝唑(TNZ),也会对人类健康和水生生态系统造成不利影响。为了应对这一挑战,我们开发了一种新型纳米复合材料,由装饰有石墨氮化碳纳米片(WC/gCN NSs)的 MXene 碳化钨(WC)组成,用于高灵敏度 TNZ 检测。WC/gCN NSs 是通过一种简单的方法合成的,可生成稳定的纳米片。与传统方法相比,WC/gCN NSs 改性电极具有更优越的 TNZ 检测性能。该传感器性能卓越,检测限为 3.6 nM,灵敏度高(4.2 µA µM-¹ cm-²),回收率达 99.9 %(n = 3)。此外,它还具有出色的重复性(RSD 2.4 %)、再现性和 30 天的稳定性。这项研究为设计具有可调结构的电催化剂提供了一种前景广阔的策略,有助于开发用于环境保护的可持续材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Graphitic carbon nitride-embedded MXene tungsten carbide nanoflakes for sensitive detection of cytotoxic tinidazole in biological samples

Graphitic carbon nitride-embedded MXene tungsten carbide nanoflakes for sensitive detection of cytotoxic tinidazole in biological samples

Background

Nitroimidazole derivatives, extensively utilized as antibiotics in the pharmaceutical, healthcare, and animal industries, pose a significant environmental threat as potential pollutants. Industrial discharge can introduce these compounds into water sources, where even trace levels of residues, such as tinidazole (TNZ), can adversely affect human health and aquatic ecosystems. However, the electrochemical detection of TNZ remains challenging due to limited sensitivity.

Methods

To address this challenge, a novel nanocomposite comprising MXene tungsten carbide (WC) decorated with graphitic carbon nitride nanosheets (WC/gCN NSs) was developed for highly sensitive TNZ detection. The WC/gCN NSs were synthesized through a straightforward approach, yielding stable nanosheets. The WC/gCN NSs-modified electrode demonstrated superior TNZ detection performance compared to conventional methods. This enhancement is attributed to the synergistic interaction between the conductive gCN NSs and the catalytic MXene WC, which generated abundant active sites and facilitated efficient electron transfer.

Significant findings

The sensor exhibited exceptional performance, achieving a detection limit of 3.6 nM, high sensitivity (4.2 µA µM⁻¹ cm⁻²), and a recovery rate of 99.9 % (n = 3). It also demonstrated excellent repeatability (RSD 2.4 %), reproducibility, and stability over 30 days. This study provides a promising strategy for designing electrocatalysts with tuneable architectures, contributing to sustainable materials for environmental protection.
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来源期刊
CiteScore
9.10
自引率
14.00%
发文量
362
审稿时长
35 days
期刊介绍: Journal of the Taiwan Institute of Chemical Engineers (formerly known as Journal of the Chinese Institute of Chemical Engineers) publishes original works, from fundamental principles to practical applications, in the broad field of chemical engineering with special focus on three aspects: Chemical and Biomolecular Science and Technology, Energy and Environmental Science and Technology, and Materials Science and Technology. Authors should choose for their manuscript an appropriate aspect section and a few related classifications when submitting to the journal online.
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