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Concentration-dependent microstructure and luminescence dynamics of Sm3 +-doped Gd3Al3Ga2O12 transparent ceramics for orange-red emission

  • Guangzhi Dong
  • , Rulang Bai
  • , Chaoke Lv
  • , Huanhuan Su
  • , Bilin Zhang
  • , Shilong Wang
  • , Tao Wang
  • , Wanqi Jie
  • Xidian University
  • School of Mechanical Engineering

科研成果: 期刊稿件文章同行评审

1 引用 (Scopus)

摘要

Rare earth ion-doped gadolinium aluminum gallium garnet (GAGG) transparent ceramics are important materials used in optoelectronic devices. Among them, Sm3+ doping is an effective way to achieve high-purity orange-red luminescence. In this study, Gd3-xAl3Ga2O12:xSm3+ transparent ceramics were prepared by two-step atmosphere sintering strategy, and it was found that their microstructure and optical properties were not synchronized with the change of doping concentration. The experimental results show that the grain growth conditions are the best (the average size is about 9.66 μm) at the doping concentration x = 0.03, and the transmittance can reach 80% in the visible light range. Within the study range, ceramics with doping concentrations x = 0.05 exhibited the highest luminous intensity, at which the system did not undergo significant concentration quenching and exhibited bright orange-red emission with a color purity exceeding 99.8%. Based on the analysis of steady-state and transient luminescence spectra combined with Judd–Ofelt (J–O) theory, the radiative transition characteristics were evaluated in this study. Further analysis of the concentration-dependent decay kinetics indicated that the shortening of the decay time is associated with the enhanced energy migration among Sm3+ ions at higher concentrations. In addition, the thermal quenching barrier is 0.124 eV, which reflects the relevant thermal stability properties of ceramics. In this study, the luminescence kinetics of Sm3+ doped GAGG ceramics were sorted out and its application potential in display technology was verified.

源语言英语
期刊论文编号189828
期刊Journal of Alloys and Compounds
1079
DOI
出版状态已出版 - 15 8月 2026

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