Gd3+-Driven Microstructure Regulation of Tm3+, Yb3+: GdxBi2−xWO6 for High-Sensitivity Temperature Sensing and Magnetism

Tm3+, Yb3+: GdxBi2−xWO6 series upconversion luminescent materials were synthesized via a solid-state method. Calculations and XRD analysis reveal that Gd3+ in the lattice exhibits both substitutional and interstitial doping. Compared with the NaYF4 matrix, the Bi2WO6 material doped with Gd3+ has a lower Debye temperature (392.45 K), and the maximum phonon energy is low; thus, the probability of nonradiative transitions decreases. SEM images and EDS results reveal that the powder particle size ranges from 0.5 to 3 μm and that the elements are evenly distributed on the surface. The diffuse reflectance absorption spectra indicate that moderate Tm3+, Yb3+ and Gd3+ doping shifts the absorption band of the material towards longer wavelengths and decreases the band gaps. Under 980 nm laser excitation and a Gd3+ doping concentration of x = 0.2, the emission intensities of Tm3+ at 476 nm, 683 nm, 703 nm, and 804 nm increase by 1.8, 1.24, 1.35, and 81.9 times, respectively. Calculations reveal that these emissions in the range of 450 to 850 nm originate from three-photon or two-photon absorption. Gd3+ codoping can prolong the lifetime of the Tm3+ energy levels. When this sample was excited at 980 nm (518 mW), the temperature was characterized by FIR703 nm/476 nm from 298 K to 573 K, and the obtained maximum relative sensitivity was 3.4907 K−1 (298 K). The minimum temperature resolution was 0.0083 K (298 K). Compared with that of the undoped Gd3+ sample, the temperature sensitivity of the Gd3+-codoped sample increased by 92.35 times. Under an external magnetic field of 20 kOe and a temperature of 300 K, the magnetization of the sample doped with Gd3+ increased fourfold to 0.08174 emu/g. This material has potential applications in temperature sensing and magnetic resonance imaging.

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Publication Details

Journal
Molecules
Published
2026-10-06
DOI
https://doi.org/10.3390/molecules31193557
Primary Topic
Luminescence Properties of Advanced Materials
Type
article
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article

Gd3+-Driven Microstructure Regulation of Tm3+, Yb3+: GdxBi2−xWO6 for High-Sensitivity Temperature Sensing and Magnetism

Linxiang Wang, Yan Zhang, Jiachen Shi, Munire Maimaiti et al.
Molecules
Luminescence Properties of Advanced Materials
article

Gd3+-Driven Microstructure Regulation of Tm3+, Yb3+: GdxBi2−xWO6 for High-Sensitivity Temperature Sensing and Magnetism

Linxiang Wang, Yan Zhang, Jiachen Shi, Munire Maimaiti, Mengliang Jiang, Xin Feng, Yue Bai
article en

Abstract

Tm3+, Yb3+: GdxBi2−xWO6 series upconversion luminescent materials were synthesized via a solid-state method. Calculations and XRD analysis reveal that Gd3+ in the lattice exhibits both substitutional and interstitial doping. Compared with the NaYF4 matrix, the Bi2WO6 material doped with Gd3+ has a lower Debye temperature (392.45 K), and the maximum phonon energy is low; thus, the probability of nonradiative transitions decreases. SEM images and EDS results reveal that the powder particle size ranges from 0.5 to 3 μm and that the elements are evenly distributed on the surface. The diffuse reflectance absorption spectra indicate that moderate Tm3+, Yb3+ and Gd3+ doping shifts the absorption band of the material towards longer wavelengths and decreases the band gaps. Under 980 nm laser excitation and a Gd3+ doping concentration of x = 0.2, the emission intensities of Tm3+ at 476 nm, 683 nm, 703 nm, and 804 nm increase by 1.8, 1.24, 1.35, and 81.9 times, respectively. Calculations reveal that these emissions in the range of 450 to 850 nm originate from three-photon or two-photon absorption. Gd3+ codoping can prolong the lifetime of the Tm3+ energy levels. When this sample was excited at 980 nm (518 mW), the temperature was characterized by FIR703 nm/476 nm from 298 K to 573 K, and the obtained maximum relative sensitivity was 3.4907 K−1 (298 K). The minimum temperature resolution was 0.0083 K (298 K). Compared with that of the undoped Gd3+ sample, the temperature sensitivity of the Gd3+-codoped sample increased by 92.35 times. Under an external magnetic field of 20 kOe and a temperature of 300 K, the magnetization of the sample doped with Gd3+ increased fourfold to 0.08174 emu/g. This material has potential applications in temperature sensing and magnetic resonance imaging.

MoleculesVol. 31(19)
Xinjiang Normal University (CN)
Openalex Percentile: Top 27%
Luminescence Properties of Advanced Materials
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