4.6 Article

Hydrogen bonding-mediated assembly of carbon dot@Zr-based metal organic framework as a multifunctional fluorescence sensor for chlortetracycline, pH and temperature detection

期刊

NEW JOURNAL OF CHEMISTRY
卷 46, 期 27, 页码 13021-13029

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d2nj02244c

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资金

  1. National Natural Science Foundation of China [22171040, 22005203]
  2. Fundamental Research Funds for the Central Universities, China [N2105006]
  3. Open Fund of Guangdong Provincial Key Laboratory of Functional Supramolecular Coordination Materials and Applications, China [2020A02]

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By utilizing hydrogen bond interactions, carbon dots were successfully confined into a zirconium-based MOF material, forming the composite CDs@UiO-66(COOH)(2). This composite exhibited excellent detection performance for chlortetracycline and showed stimuli-response towards pH and temperature changes. This work opens a new avenue for multifunctional fluorescent sensing applications.
Hydrogen-bond driven self-assembly of carbon dot-based luminescent materials has been widely studied in the fields of sensor and optoelectronic devices. However, the uniform confinement of carbon-dots (CDs) into crystalline porous materials through hydrogen bond interactions has rarely been reported. Herein, an O-phenylenediamine (O-PD) mediated Zr-based MOF material denoted as CDs@UiO-66(COOH)(2) was successfully synthesized via an efficient solvent-free synthetic method. The O-PD molecules were grafted to the structural pyromellitic acid ligands in the UiO-66(COOH)(2) framework via H-bonding interactions, and during the subsequent thermal treatment process the O-PD molecules were partially decomposed and converted into luminescent CDs. The resultant CDs@UiO-66(COOH)(2) composites retained the crystallinity of UiO-66(COOH)(2), and the confined CDs in UiO-66(COOH)(2) show excitation-independent stable green emitting properties when dispersed in a variety of solvents. The CDs@UiO-66(COOH)(2) composite exhibits excellent chlortetracycline detection performance with high selectivity, anti-interference and low limit of detection (LOD = 0.102 mu M) in a wide linear range of 0-100 mu M. Also, it shows an excellent stimuli-response in fluorescence intensities toward pH and temperature changes. Acting as an optical thermometer, the maximum relative temperature sensitivity (S-r) is 0.82% degrees C-1 in the range of 10-80 degrees C. This work opens a new way for exploring fluorescent CD-integrated MOF composites via a hydrogen-bond driving strategy for multifunctional fluorescent sensing applications.

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