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The performance of high-power laser-driven lighting systems is fundamentally limited by an insufficient understanding of the mechanisms governing heat generation and luminous saturation in color-converting materials. In this study, Ce-doped Lu3Al5O12 (LuAG:Ce) thin films synthesized through spray pyrolysis across a doping range of 0.1–4.0 mol% are systematically investigated to elucidate these effects. Heat generation, resulting from the Stokes shift, is found to scale with both Ce concentration and excitation power density, emerging as a critical factor that constrains luminescence output. At an optimized doping level of 2.5 mol% Ce, the films achieve a luminous flux of 1618.3 lm and exhibit a saturation threshold of 28 W·mm−2 under ambient conditions. Incorporation of water cooling reduces the local laser spot temperature by approximately 42.3 °C at the same excitation intensity, effectively raising the saturation threshold to 32 W·mm−2 and increasing luminous flux to 1938.6 lm, representing a 19.8% enhancement. These results demonstrate that nonradiative transitions, arising from thermal quenching, lead to luminous saturation. Collectively, this study clarifies the origins of heat generation and luminous saturation in LuAG:Ce films under high-power laser excitation and underscores the critical roles of Ce doping optimization and heat dissipation in enhancing solid-state lighting performance.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, http://creativecommons.org/licenses/by/4.0/).
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