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荧光NH-MIL-53(Al)二维纳米片和三维块状材料的氟化物传感性能

Fluoride sensing performance of fluorescent NH-MIL-53(Al): 2D nanosheets 3D bulk.

作者信息

Li Zixuan, Zhan Deyi, Saeed Abdul, Zhao Nanjing, Wang Junfeng, Xu Weihong, Liu Jinhuai

机构信息

Key Laboratory of Environmental Optics and Technology, and Institute of Solid State Physics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, P. R. China.

出版信息

Dalton Trans. 2021 Jun 22;50(24):8540-8548. doi: 10.1039/d1dt00666e.

Abstract

Due to their ultra-thin morphology, larger specific surface area and more exposed active sites, two-dimensional (2D) metal-organic framework (MOF) nanosheets can break the limitations of three-dimensional (3D) MOFs in sensitivity, response speed and the limit of detection for sensing applications. In this work, fluorescent NH2-MIL-53(Al) nanosheets were developed as a fluoride detection sensor compared with the 3D bulk counterpart. The morphological and structural characteristics of the obtained products were systematically characterized, and the favourable chemical and fluorescence stability of the NH2-MIL-53(Al) nanosheets were explored. The fluorescent NH2-MIL-53(Al) nanosheets showed high sensitivity, fast response speed (as short as 10 seconds), low limit of detection (15.2 ppb), and wide linear detection range (5-250 μM), and all performances were better than those of their bulk counterpart. In addition, the sensing mechanism was investigated to be based on the transformation of the NH2-MIL-53(Al) framework that induced the release of fluorescent ligands, resulting in an exceptionally enhanced fluorescence. This work highlights the advantages of 2D MOF nanosheets in fluorescence sensing applications.

摘要

由于其超薄的形态、更大的比表面积和更多暴露的活性位点,二维(2D)金属有机框架(MOF)纳米片可以突破三维(3D)MOF在传感应用中的灵敏度、响应速度和检测限方面的限制。在这项工作中,与三维块状材料相比,荧光NH2-MIL-53(Al)纳米片被开发用作氟化物检测传感器。对所得产物的形态和结构特征进行了系统表征,并探究了NH2-MIL-53(Al)纳米片良好的化学和荧光稳定性。荧光NH2-MIL-53(Al)纳米片表现出高灵敏度、快速响应速度(短至10秒)、低检测限(15.2 ppb)和宽线性检测范围(5-250 μM),且所有性能均优于其块状对应物。此外,研究发现传感机制基于NH2-MIL-53(Al)框架的转变,该转变诱导荧光配体的释放,从而导致荧光异常增强。这项工作突出了二维MOF纳米片在荧光传感应用中的优势。

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