Temperature dependence of Ce luminescence characteristics in LaBr3: Ce crystal

Shixuan Guo, Kejing Liu, Zihang Lin, Zhe Kang, Jinbo Liu, Ziang Yin, Zhuochen Cai, Yi Liu, Xianggang Zhang, Fa Luo, Shitao Xiong, Shusheng Wang, Xuxin He, Aizhong Yue, Qinghua Zhao, Rongrong Guo, Tao Wang

Research output: Contribution to journalArticlepeer-review

Abstract

Despite the large interest in the scintillation properties of LaBr3:Ce, a detailed understanding of the underlying mechanism of temperature-dependence properties of Ce luminescence remains elusive. This study introduces a self-designed spectral apparatus to explore these properties in LaBr3:5%Ce. We observed a redshift phenomenon and band changes in the emission peak bands, indicating a reduction of the bond length between Ce and the host with increasing temperature. Moreover, the probability of low-energy peak emission decreases and the probability of high-energy peak emission increases, with increasing temperature was observed, suggesting a correlation with the proximity of Ce's 4f energy level to the valence band. Utilizing intensity parameters from the spectra, we identified the impact of temperature on LaBr3:Ce's self-absorption effect, revealing a significant self-absorption effect at the high-energy peak for the first time. A simple self-absorption model indicated that, despite high quantum efficiency of Ce, the overall self-absorption is minimal, establishing a correlation between the self-absorption coefficient of the high-energy peak and overall absorption. This research offers insights for developing radiation-resistant high-temperature luminescent devices and advances the field of high-temperature luminescent materials.

Original languageEnglish
Article number120956
JournalJournal of Luminescence
Volume277
DOIs
StatePublished - Jan 2025

Keywords

  • LaBr:Ce
  • Luminescence
  • Scintillator
  • Self-absorption
  • Temperature dependence

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