Li Yao, Shen Yuli, Zhang Yuanyuan, Zeng Ting, Wan Qijin, Lai Guosong, Yang Nianjun
School of Chemistry and Environmental Engineering, Key Laboratory of Green Chemical Engineering Process of Ministry of Education, Hubei Key Lab of Novel Reactor and Green Chemical Technology, Wuhan Institute of Technology, Wuhan, 430073, China.
School of Chemistry and Environmental Engineering, Key Laboratory of Green Chemical Engineering Process of Ministry of Education, Hubei Key Lab of Novel Reactor and Green Chemical Technology, Wuhan Institute of Technology, Wuhan, 430073, China; Hubei Key Laboratory of Pollutant Analysis & Reuse Technology, Hubei Normal University, Huangshi, 435002, China.
Anal Chim Acta. 2021 May 8;1158:338419. doi: 10.1016/j.aca.2021.338419. Epub 2021 Mar 17.
Carbon nanomaterials are quite promising to be combined with metal-organic frameworks (MOFs) to enhance the sensing ability of both materials. In this work, a MOF nanoparticle of UiO-66-NH is integrated with carbon nanotubes (CNTs) (UiO-66-NH/CNTs) with a facile solvothermal method. The morphology, surface area and properties of this UiO-66-NH/CNTs nanocomposite was investigated using electron microscopy, XRD, XPS, BET analysis and electrochemical techniques. Catalytic oxidation of dopamine (DA) and acetaminophen (AC) on this nanocomposite was achieved, owing to a 3D hybrid structure or a large electroactive surface area, excellent electrical conductivity, a large number of active sites of this nanocomposite. It was further utilized as a sensing platform to establish an electrochemical sensor for the monitoring of both DA and AC. The enhanced oxidation signals led to the voltametric sensing of DA and AC in a broad linear range from 0.03 to 2.0 μM and low detection limits (S/N = 3) of 15 and 9 nM for DA and AC, respectively. The proposed sensor also possessed good reproducibility, repeatability, long-term stability, selectivity, and satisfactory recovery in serum samples analysis. Therefore, it has the great potential for the accurate quantification of DA and AC in complex matrixes.
碳纳米材料与金属有机框架(MOFs)相结合以增强两种材料的传感能力很有前景。在这项工作中,采用简便的溶剂热法将UiO-66-NH的MOF纳米颗粒与碳纳米管(CNTs)集成在一起(UiO-66-NH/CNTs)。使用电子显微镜、XRD、XPS、BET分析和电化学技术研究了这种UiO-66-NH/CNTs纳米复合材料的形态、表面积和性能。由于这种纳米复合材料的三维混合结构或大的电活性表面积、优异的导电性、大量的活性位点,实现了多巴胺(DA)和对乙酰氨基酚(AC)在该纳米复合材料上的催化氧化。它进一步被用作传感平台,建立了用于监测DA和AC的电化学传感器。增强的氧化信号导致在0.03至2.0 μM的宽线性范围内对DA和AC进行伏安传感,DA和AC的检测限(S/N = 3)分别低至15和9 nM。所提出的传感器在血清样品分析中还具有良好的重现性、重复性、长期稳定性、选择性和令人满意的回收率。因此,它在复杂基质中准确定量DA和AC方面具有巨大潜力。