
The ability to engineer on a molecular level luminescent metal-organic frameworks (MOFs) enables the design of well-performing ratiometric, i.e., self-referencing, temperature sensors. Lanthanide-based MOFs stand out as luminescent temperature sensors due to their high luminescence intensity and the sharp emission lines of the lanthanides. The use of two different lanthanide cations, incorporated into the same MOF structure, is supposed to enable ratiometric temperature sensing. Herein, we present a series of mixed-metal EuxTb(1-x)BTC, in which the metal ions are homogeneously dispersed, as demonstrated by 1H solid state NMR spectroscopy. The EuxTb(1-x)BTC series shows controllable luminescent properties, which depend on the solvation of the lanthanide. The two MOFs in the series with the lowest Eu contents, namely Eu0.05Tb0.95BTC and Eu0.02Tb0.98BTC, are suitable candidates for ratiometric temperature sensing, achieving sensitivities of up to 2.0 %/K. As the fluorescence is affected by the presence of solvents, simultaneous ratiometric temperature and solvent sensing is possible with remarkable high thermal sensitivities of ca. 0.1 %/K and ca. 0.2 %/K for dispersions of Eu0.02Tb0.98BTC in acetonitrile and ethanol, respectively.
This data publication is based on the metadata and datasets underlying the manuscript: Europium(III)/Terbium(III) Mixed Metal-Organic Frameworks and their Application as Ratiometric Thermometers with Tuneable Sensitivity in Organic Dispersion A readme file containing all descriptions can be found in the main folder.
Paramagnetic NMR, Luminecent Thermometer, Fluorescence Spectroscopy, Metal-Organic Framework, Solid State NMR Spectroscopy, MOF
Paramagnetic NMR, Luminecent Thermometer, Fluorescence Spectroscopy, Metal-Organic Framework, Solid State NMR Spectroscopy, MOF
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