4.6 Article

LiYF4-nanocrystal-embedded glass ceramics for upconversion: glass crystallization, optical thermometry and spectral conversion

Journal

RSC ADVANCES
Volume 11, Issue 4, Pages 2066-2073

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0ra08285f

Keywords

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Funding

  1. National Natural Science Foundation of China [51802064]
  2. Open Fund of Fujian Provincial Key Laboratory of Quantum Manipulation and New Energy Materials [QMNEM1904]

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The study successfully integrated nanocrystals into glass ceramics using a melt-quenching method, showing potential for optical thermometry and spectral conversion applications. Characterization techniques such as XRD and TEM were utilized to analyze the impact of different dopants on the structure and properties of the materials, uncovering new possibilities for the expansive applications of GC materials.
Glass ceramics (GCs) can perfectly integrate nanocrystals (NCs) into bulk materials. Herein, GCs containing LiYF4 NCs were fabricated via a traditional melt-quenching method and subsequent glass crystallization. Structural characterization was carried out via X-ray diffraction (XRD), transmission electron microscopy (TEM), selected area electron diffraction (SAED), and scanning transmission electron microscopy high-angle annular dark-field (STEM-HAADF) analysis, suggesting the precipitation of LiYF4 NCs from a glass matrix. Taking Eu3+ as a structural probe, the spectrographic features provide compelling evidence for the partition of dopants. In particular, intense upconversion (UC) emission was achieved when co-doped with Yb3+ and Er3+. Temperature-dependent UC emission behaviour was also established based on the fluorescence intensity ratio (FIR) of Er3+, to study its properties for optical thermometry. Furthermore, spectral conversion was attained through cross relaxation (CR) between Ce3+ and Ho3+, tuning from green to red with various Ce3+ doping concentrations. There is evidence that LiYF4 NC-embedded GCs were favorable for UC, which may be extremely promising for optical thermometry and spectral conversion applications. This work may open up new avenues for the exploration of GC materials for expansive applications.

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