Wei Chenhuinan, Wang Zhuo, Li Shanyu, Li Tao, Du Xinran, Wang Huihu, Liu Qiming, Yu Ziyang
Hubei Provincial Key Laboratory of Green Materials for Light Industry, School of Materials and Chemical Engineering, Hubei University of Technology, Wuhan 430068, PR China; New Materials and Green Manufacturing Talent Introduction and Innovation Demonstration Base, Hubei University of Technology, Wuhan, PR China.
Hubei Provincial Key Laboratory of Green Materials for Light Industry, School of Materials and Chemical Engineering, Hubei University of Technology, Wuhan 430068, PR China.
Colloids Surf B Biointerfaces. 2023 Mar;223:113149. doi: 10.1016/j.colsurfb.2023.113149. Epub 2023 Jan 16.
Noninvasive human health monitoring requires the development of efficient electrochemical sensors for the quantitative analysis of infinitesimal biomolecules. In this work, we reported a novel hierarchical nanosheet assemblies (HSA) of copper-based metal-organic frameworks (MOFs) as an electrochemical sensor for ascorbic acid (AA) detection. Copper 1,4-benzenedicarboxylate (CuBDC) HSA was constructed by three steps of in situ growth on stone paper, including hydrolysis, anion exchange, and heteroepitaxy growth. The monodispersed two-dimensional MOFs nanosheet units were aligned in an orderly manner and arranged into three-dimensional hierarchical assemblies. The CuBDC HSA-based AA sensor displayed a high sensitivity of 396.8 μA mM cm and a low detection limit of 0.1 μM. Excellent selectivity, stability and reproducibility were also obtained. Benefiting from the advantages of ultrathin nanosheets and nature-inspired hierarchy, this unique architecture facilitated reactant dispersion and maximized the accessible active sites and charge-transport capability and thus had superior catalytic ability for the electro-oxidation of ascorbic acid compared to bulk MOFs. Moreover, the CuBDC HSA sensor performed AA level detection in juice samples with acceptable accuracy and verified the feasibility for sweat AA sensing. This novel MOFs architecture holds great potential as an electrochemical sensor to detect AA for noninvasive human health monitoring in the future.
非侵入式人体健康监测需要开发高效的电化学传感器,用于对微量生物分子进行定量分析。在这项工作中,我们报道了一种新型的基于铜的金属有机框架(MOF)的分级纳米片组装体(HSA),作为用于检测抗坏血酸(AA)的电化学传感器。通过在石纸上原位生长的三个步骤构建了1,4-苯二甲酸铜(CuBDC)HSA,包括水解、阴离子交换和异质外延生长。单分散的二维MOF纳米片单元有序排列并形成三维分级组装体。基于CuBDC HSA的AA传感器表现出396.8 μA mM cm的高灵敏度和0.1 μM的低检测限。还获得了优异的选择性、稳定性和重现性。受益于超薄纳米片的优势和受自然启发的分级结构,这种独特的结构促进了反应物的分散,使可及的活性位点和电荷传输能力最大化,因此与块状MOF相比,对抗坏血酸的电氧化具有卓越的催化能力。此外,CuBDC HSA传感器在果汁样品中进行了AA水平检测,具有可接受的准确度,并验证了汗液AA传感的可行性。这种新型的MOF结构作为一种电化学传感器,在未来用于非侵入式人体健康监测检测AA方面具有巨大潜力。