Journal of Inorganic Materials

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Growth, Spectroscopy, and Laser Performance of Tm:YScO₃ Crystal

SU Junyang1, YANG Chuang1, LIU Jian1, JIANG Zhengyuan1, ZHANG Jun1, LIU Longxin2, PAN Zhongben3, XU Xiaodong1, XU Jun2   

  1. 1. School of Physics and Electronic Engineering, Jiangsu Normal University, Xuzhou 221116, China;
    2. School of Physical Science and Engineering, Tongji University, Shanghai 200092, China;
    3. School of Information Science and Engineering, Shandong University, Qingdao, 266237, China
  • Received:2026-03-11 Revised:2026-04-07
  • About author:SU Junyang (2002-), male, PhD candidate. E-mail: wuji@aaa.ccc
  • Supported by:
    National Natural Science Foundation of China (62505118); Basic Research Program of Jiangsu Province (BK20230685)

Abstract: Mid-infrared laser crystals operating in the 2.1 µm spectral region are widely utilized in eye-safe applications, remote sensing, and medical surgery. In this study, we successfully grew high-quality 2.5% Tm:YScO3 single crystals (2.5% is in atomic) using the Czochralski method. We systematically characterized their room-temperature absorption and fluorescence spectra, measured fluorescence lifetimes, calculated key spectroscopic parameters based on Judd-Ofelt theory, and evaluated their continuous-wave (CW) laser performance. The results indicate that the crystal exhibits an absorption cross-section of 0.33×10-20 cm2 at 794 nm with a full width at half maximum (FWHM) of 23.5 nm. The Judd-Ofelt intensity parameters Ω2, Ω4, and Ω6 were determined to be 2.55×10-20, 0.80×10-20, and 0.66×10-20 cm2, respectively, yielding a calculated radiative lifetime of 6.52 ms for the 3F4 level. Furthermore, the emission cross-section at 1960 nm was found to be 0.44×10-20 cm2 with a broad FWHM of 86.63 nm, while the measured fluorescence lifetime was 3.855 ms. Under an incident pump power of 20 W, the laser achieved a maximum output power of 2.78 W with a slope efficiency of 22.66% and excellent beam quality factors of Mx2=1.12 and My2=1.09. The combination of a broad emission bandwidth and superior beam quality suggests that Tm:YScO3 is particularly well-suited for tunable and ultrafast laser applications. In conclusion, the 2.5% Tm:YScO3 crystal grown by the Czochralski method demonstrates exceptional spectroscopic and lasing properties, establishing it as a highly promising candidate for next-generation 2.1 µm solid-state laser systems.

Key words: Czochralski method, Tm:YScO3, crystal growth, spectroscopic properties, laser performance

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