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高度多孔的3D镍金属有机框架作为一种高效的酶模拟电化学传感平台,用于生物医学应用中汗液和唾液实际样品中的葡萄糖检测。

Highly Porous 3D Ni-MOFs as an Efficient and Enzyme-Mimic Electrochemical Sensing Platform for Glucose in Real Samples of Sweat and Saliva in Biomedical Applications.

作者信息

Pavadai Rajaji, Arivazhagan Mani, Jakmunee Jaroon, Pavadai Nethaji, Palanisamy Revathi, Honnu Ganesha, Kityakarn Sutasinee, Khumphon Jeerawan, Issro Chaisak, Khamboonrueang Dusadee, Thongmee Sirikanjana

机构信息

Department of Chemistry, Faculty of Science, Kasetsart University, Bangkok 10900, Thailand.

Department of Chemistry, Dhanalakshmi Srinivasan College of Engineering and Technology, Mamallapuram, Chennai 603104, India.

出版信息

ACS Omega. 2024 Dec 27;10(1):1610-1623. doi: 10.1021/acsomega.4c09437. eCollection 2025 Jan 14.

Abstract

Nickel-based metal-organic frameworks, denoted as three-dimensional nickel trimesic acid frameworks (3D Ni-TMAF), are gaining significant attention for their application in nonenzymatic glucose sensing due to their unique properties. Ni-MOFs possess a high surface area, tunable pore structures, and excellent electrochemical activity, which makes them ideal for facilitating electron transfer and enhancing the catalytic oxidation of glucose. This research describes a new electrochemical enzyme-mimic glucose biosensor in biological solutions that utilizes 3D nanospheres Ni-TMAF created layer-by-layer on a highly porous nickel substrate. The Ni-TMAF based on the nonenzymatic electrochemical glucose oxidation represent the promising approach, leveraging the unique properties of Ni-TMAF to provide efficient, stable, and potentially more cost-effective alternatives to traditional enzyme-mimic sensors. The MOF is synthesized from trimesic acid (TMA) and nickel nitrate hexahydrate through a solvothermal reaction process. The resulting Ni-TMAF utilizes the three-dimensional nanospheres of crystalline porous structure with a large surface area and numerous active sites for catalytic reaction toward glucose. Ni-TMAF are indeed known for their excellent electrocatalytic activity, particularly in the context of glucose oxidation under alkaline conditions. The nickel centers in the Ni-TMAF facilitate efficient electron transfer and redox reactions, leading to the high sensitivity of 203.89 μA μM cm and lower LOD of 0.33 μM and fast response time of <3 s in glucose sensors. Their stability, cost-effectiveness, and high performance make 3D Ni-TMAF a promising material for nonenzymatic electrochemical glucose sensors.

摘要

镍基金属有机框架,即三维均苯三甲酸镍框架(3D Ni-TMAF),因其独特性能在非酶葡萄糖传感领域的应用而备受关注。镍基金属有机框架具有高比表面积、可调节的孔结构和优异的电化学活性,使其成为促进电子转移和增强葡萄糖催化氧化的理想材料。本研究描述了一种在生物溶液中的新型电化学酶模拟葡萄糖生物传感器,该传感器利用在高度多孔的镍基底上逐层制备的3D纳米球Ni-TMAF。基于非酶电化学葡萄糖氧化的Ni-TMAF代表了一种有前景的方法,利用Ni-TMAF的独特性能为传统酶模拟传感器提供高效、稳定且可能更具成本效益的替代方案。该金属有机框架通过均苯三甲酸(TMA)和六水合硝酸镍经溶剂热反应过程合成。所得的Ni-TMAF利用具有大表面积和众多用于葡萄糖催化反应活性位点的结晶多孔结构三维纳米球。Ni-TMAF确实以其优异的电催化活性而闻名,特别是在碱性条件下葡萄糖氧化的背景下。Ni-TMAF中的镍中心促进高效的电子转移和氧化还原反应,导致葡萄糖传感器具有203.89 μA μM cm的高灵敏度、0.33 μM的较低检测限和<3 s的快速响应时间。它们的稳定性、成本效益和高性能使3D Ni-TMAF成为非酶电化学葡萄糖传感器的一种有前景的材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/234b/11740627/903fdf46cbc4/ao4c09437_0014.jpg

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