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用于同时检测人血样中扑热息痛、茶碱和咖啡因的高电化学活性 TiCTx MXene/MWCNT 纳米复合材料。

Highly electrochemically active TiCTx MXene/MWCNT nanocomposite for the simultaneous sensing of paracetamol, theophylline, and caffeine in human blood samples.

机构信息

Department of Chemical and Biochemical Engineering, College of Engineering, Dongguk University-Seoul, 30 Pildong-Ro 1-Gil, Jung-Gu, Seoul, 04620, Republic of Korea.

Research Center for Precision Environmental Medicine, Kaohsiung Medical University (KMU), No. 100, Shiquan 1St Road, Sanmin District, Kaohsiung City, 807, Taiwan.

出版信息

Mikrochim Acta. 2024 Mar 20;191(4):212. doi: 10.1007/s00604-024-06273-9.

Abstract

The facile fabrication is reported of highly electrochemically active TiCTx MXene/MWCNT (3D/1D)-modified screen-printed carbon electrode (SPE) for the efficient simultaneous electrochemical detection of paracetamol, theophylline, and caffeine in human blood samples. 3D/1D TiCTx MXene/MWCNT nanocomposite was synthesized using microwave irradiation and ultrasonication processes. Then, the TiCTx/MWCNT-modified SPE electrode was fabricated and thoroughly characterized towards its physicochemical and electrochemical properties using XPS, TEM, FESEM, XRD, electrochemical impedance spectroscopy, cyclic voltammetry, and differential pulse voltammetry techniques. As-constructed TiCTx-MWCNT/SPE offers excellent electrochemical sensing performance with good detection limits (0.23, 0.57, and 0.43 µM) and wide linear ranges (1.0 ~ 90.1, 2.0 ~ 62.0, and 2.0-90.9 µM) for paracetamol, caffeine, and theophylline, respectively,  in the human samples. Notably, the non-enzymatic electroactive nanocomposite-modified electrode has depicted a semicircle Nyquist plot with low charge transfer resistance (R∼95 Ω), leading to high ionic diffusion and facilitating an excellent electron transfer path. All the above results in efficient stability, reproducibility, repeatability, and sensitivity compared with other reported works, and thus, it claims its practical utilization in realistic clinical applications.

摘要

本文报道了一种简便的制备方法,用于制备高电化学活性的 TiCTx MXene/MWCNT(3D/1D)-修饰的丝网印刷碳电极(SPE),用于高效同时电化学检测人血样中的扑热息痛、茶碱和咖啡因。使用微波辐射和超声处理过程合成了 3D/1D TiCTx MXene/MWCNT 纳米复合材料。然后,制备了 TiCTx/MWCNT 修饰的 SPE 电极,并使用 XPS、TEM、FESEM、XRD、电化学阻抗谱、循环伏安法和差分脉冲伏安法技术对其物理化学和电化学性质进行了彻底表征。构建的 TiCTx-MWCNT/SPE 提供了出色的电化学传感性能,具有良好的检测限(0.23、0.57 和 0.43 µM)和较宽的线性范围(1.0 至 90.1、2.0 至 62.0 和 2.0 至 90.9 µM),用于人血样中的扑热息痛、咖啡因和茶碱。值得注意的是,非酶电活性纳米复合材料修饰电极具有较小的半圆奈奎斯特图,电荷转移电阻(R∼95 Ω)低,导致较高的离子扩散并促进了优异的电子转移路径。与其他报道的工作相比,所有这些结果都表现出高效的稳定性、重现性、可重复性和灵敏度,因此,它声称在实际临床应用中具有实用价值。

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