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使用双金属Zn-Ni金属有机框架纳米片/氧化石墨烯纳米复合材料/二茂铁二甲酸/离子液体修饰碳糊电极对同型半胱氨酸进行电催化测定。

Electrocatalytic determination of homocysteine using a bimetallic Zn-Ni MOF nanosheets/graphene oxide nanocomposite/ferrocene dicarboxylic acid/ionic liquid modified carbon paste electrode.

作者信息

Tajik Somayeh, Afshar Sedigheh, Beitollahi Hadi, Nejad Fariba Garkani, Mohammadi Sayed Zia, Aliabadi Fatemeh, Aflatoonian Mohammad Reza

机构信息

Research Center for Tropical and Infectious Diseases, Kerman University of Medical Sciences, Kerman, Iran.

Faculty of Pharmacy, Kerman University of Medical Sciences, Kerman, Iran.

出版信息

Anal Methods. 2025 Aug 15;17(32):6506-6515. doi: 10.1039/d5ay00759c.

Abstract

We synthesized the bimetallic zinc-nickel metal-organic framework nanosheets/graphene oxide nanocomposite (Zn-Ni MOF NSs/GO nanocomposite) through a solvo/hydrothermal method. We characterized it utilizing X-ray diffraction (XRD), field-emission scanning electron microscopy (FE-SEM), and energy dispersive X-ray spectroscopy (EDX). Then, a modified carbon paste electrode with the Zn-Ni-MOF NSs/GO nanocomposite, ionic liquid (IL), and ferrocene dicarboxylic acid (FCD) was prepared (Zn-Ni MOF NSs/GO/IL/FCD/CPE) for the voltammetric determination of homocysteine (Hcys). The electrocatalytic performance of the Zn-Ni MOF NSs/GO/IL/FCD/CPE sensor toward Hcys was studied various voltammetric methods (cyclic voltammetry (CV), differential pulse voltammetry (DPV)) and chronoamperometry. The results of the CV tests demonstrated that the Zn-Ni MOF NSs/GO/IL/FCD/CPE sensor exhibited superior catalytic performance for the oxidation of Hcys within a phosphate buffer solution (PBS, pH of 7.0) compared to other electrodes. This enhanced activity can be attributed to the combined effects of the IL, FCD, and the Zn-Ni-MOF NSs/GO nanocomposite. The designed electrode was utilized to determine Hcys using DPV. Under optimized conditions and parameters, the anodic current response varied linearly with Hcys levels in the ranges of 0.05 to 12.5 and 12.5 to 200.0 μM, achieving a sensitivity of 0.6408 μA μM. With this approach, the limit of detection (LOD) was determined to be 0.02 μM. Moreover, the created sensor exhibited good reproducibility, repeatability, and stability. Validation in real samples demonstrated the sensor's practical utility for Hcys detection, yielding excellent recovery rates between 98% and 104.3%. This developed electrochemical sensor shows considerable potential for clinical applications in the detection of Hcys.

摘要

我们通过溶剂热法合成了双金属锌镍金属有机框架纳米片/氧化石墨烯纳米复合材料(Zn-Ni MOF NSs/GO纳米复合材料)。我们利用X射线衍射(XRD)、场发射扫描电子显微镜(FE-SEM)和能量色散X射线光谱(EDX)对其进行了表征。然后,制备了一种含有Zn-Ni-MOF NSs/GO纳米复合材料、离子液体(IL)和二茂铁二甲酸(FCD)的修饰碳糊电极(Zn-Ni MOF NSs/GO/IL/FCD/CPE),用于伏安法测定同型半胱氨酸(Hcys)。采用多种伏安法(循环伏安法(CV)、差分脉冲伏安法(DPV))和计时电流法研究了Zn-Ni MOF NSs/GO/IL/FCD/CPE传感器对Hcys的电催化性能。CV测试结果表明,与其他电极相比,Zn-Ni MOF NSs/GO/IL/FCD/CPE传感器在磷酸盐缓冲溶液(PBS,pH = 7.0)中对Hcys的氧化表现出优异的催化性能。这种增强的活性可归因于IL、FCD和Zn-Ni-MOF NSs/GO纳米复合材料的综合作用。所设计的电极用于通过DPV测定Hcys。在优化的条件和参数下,阳极电流响应与Hcys水平在0.05至12.5 μM和12.5至200.0 μM范围内呈线性变化,灵敏度达到0.6408 μA μM。采用这种方法,检测限(LOD)确定为0.02 μM。此外,所制备的传感器具有良好的重现性、重复性和稳定性。实际样品验证表明该传感器在检测Hcys方面具有实际应用价值,回收率在98%至104.3%之间,效果良好。这种开发的电化学传感器在临床检测Hcys方面具有相当大的潜力。

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