TY - JOUR
T1 - TSSG Growth and Thermal Field Optimization of Er3+:NaSrY(Mo1–xWxO4)3 Crystals
T2 - Structure Evolution and Anion-Substitution-Induced Disorder
AU - Zuo, Chunyu
AU - Li, Chenglong
AU - Li, Xinying
AU - Li, Chun
AU - Yang, Weiling
AU - Lin, Hai
AU - Liu, Lina
AU - Li, Shasha
AU - Li, Jian
AU - Leng, Zhuang
AU - Xing, Shusen
AU - Zeng, Fanming
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/7/15
Y1 - 2026/7/15
N2 - In this study, a series of Er3+:NaSrY(Mo1–xWxO4)3 (x = 0.1, 0.3, 0.5) crystals were successfully grown using the top-seeded solution growth (TSSG) method. The effects of partial substitution of Mo6+ by W6+ on the crystal structure, electronic structure, and the 1.55 μm luminescence properties of Er3+ were systematically investigated. The growth temperature field was optimized through finite element simulations, enabling the determination of the optimal crucible position and seed rod rotation rate. X-ray diffraction and Rietveld refinement results indicate that W doping induces lattice expansion and shifts the diffraction peaks toward larger angles. First-principles calculations and diffuse reflectance spectroscopy reveal that W doping effectively tunes the bandgap of the material. The spectroscopic results indicate that when the W doping concentration reaches x = 0.3, the absorption capability of Er3+ at 980 nm is significantly enhanced, with an absorption cross section of 4.75 × 10–21 cm2. Meanwhile, the emission band around 1.55 μm exhibits remarkable broadening, with the full width at half-maximum (fwhm) increasing to 98.3 nm and the corresponding emission cross section reaching 12.1 × 10–21 cm2. Combined with the fluorescence lifetime and gain cross-section analysis, the crystal demonstrates a relatively low lasing threshold and excellent gain performance. These results suggest that Er3+:NaSrY(Mo1–xWxO4)3 (x = 0.1, 0.3, 0.5) crystals are promising candidates for broadband tunable near-infrared laser gain media.
AB - In this study, a series of Er3+:NaSrY(Mo1–xWxO4)3 (x = 0.1, 0.3, 0.5) crystals were successfully grown using the top-seeded solution growth (TSSG) method. The effects of partial substitution of Mo6+ by W6+ on the crystal structure, electronic structure, and the 1.55 μm luminescence properties of Er3+ were systematically investigated. The growth temperature field was optimized through finite element simulations, enabling the determination of the optimal crucible position and seed rod rotation rate. X-ray diffraction and Rietveld refinement results indicate that W doping induces lattice expansion and shifts the diffraction peaks toward larger angles. First-principles calculations and diffuse reflectance spectroscopy reveal that W doping effectively tunes the bandgap of the material. The spectroscopic results indicate that when the W doping concentration reaches x = 0.3, the absorption capability of Er3+ at 980 nm is significantly enhanced, with an absorption cross section of 4.75 × 10–21 cm2. Meanwhile, the emission band around 1.55 μm exhibits remarkable broadening, with the full width at half-maximum (fwhm) increasing to 98.3 nm and the corresponding emission cross section reaching 12.1 × 10–21 cm2. Combined with the fluorescence lifetime and gain cross-section analysis, the crystal demonstrates a relatively low lasing threshold and excellent gain performance. These results suggest that Er3+:NaSrY(Mo1–xWxO4)3 (x = 0.1, 0.3, 0.5) crystals are promising candidates for broadband tunable near-infrared laser gain media.
UR - https://www.scopus.com/pages/publications/105045009719
U2 - 10.1021/acs.cgd.6c00491
DO - 10.1021/acs.cgd.6c00491
M3 - Article
AN - SCOPUS:105045009719
SN - 1528-7483
VL - 26
SP - 5557
EP - 5569
JO - Crystal Growth and Design
JF - Crystal Growth and Design
IS - 14
ER -