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Cationic Substitution-Enabled Green-Emitting Gd 2– y Y y LuAl 4 GaO 12 : Ce 3+ Garnet Phosphors with High Quantum Efficiency and Superior Thermal Stability for Advanced WLEDs

作者:Dan Zhang, Taifang Zhang, Mekhrdod Kurboniyon, Peng Wang, Chong‐Geng Ma · 发表于:Inorganic Chemistry · 年份:2025 · DOI:10.1021/acs.inorgchem.5c01718 · 被引用次数:10 · 研究领域:Luminescence Properties of Advanced Materials、Microwave Dielectric Ceramics Synthesis、Perovskite Materials and Applications

A novel garnet-type phosphor, Gd 2– y Y y LuAl 4 GaO 12: Ce 3+, was synthesized via a high-temperature solid-state reaction to address the demand for efficient green-emitting materials in solid-state lighting. By employing a cation substitution strategy (Y 3+ /Gd 3+ codoping), the photoluminescence performance was significantly enhanced: the quantum efficiency increased from 86.79 to 96.86%, accompanied by a tunable emission shift from yellow to green (560–520 nm). Moreover, the thermal stability at 423 K improved dramatically from 40.79 to 92.98%, surpassing those of commercial green phosphors. Structural and spectral analyses revealed that the optimized crystal field splitting and enhanced lattice rigidity, induced by cation substitution, effectively suppressed nonradiative transitions, thereby boosting both quantum efficiency and thermal stability. A prototype white light-emitting diode (WLED) fabricated with Y 2 LuAl 4 GaO 12: Ce 3+ phosphor exhibited excellent performance, including a high color rendering index (Ra = 91), low correlated color temperature (CCT = 3043 K), and good color stability under varying driving currents. These findings highlight the significant promise of Gd 2– y Y y LuAl 4 GaO 12: Ce 3+ as a superior green-emitting phosphor for advanced WLED systems, providing a feasible pathway for designing outstanding thermal stability and color-tunable luminescent materials via cationic engineering.