Coupled trapping and de-trapping dynamics govern spectral evolution in multi-center luminescent systems.
basic_science · Level V
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- Record sourced from PubMed, PMID 42749724.
- Also identified by DOI 10.1038/s41467-026-76888-4.
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Abstract
In luminescent materials, excitation-time-dependent spectral evolution in connection with nonequilibrium carrier dynamics often remain poorly understood. Here we show that coupled trapping and de-trapping processes govern this behavior in a multi-center luminescent system for the case of Sb<sup>3+</sup> doped CsCdCl<sub>3</sub>, featuring hexagonal and cubic phases. Especially in hexagonal CsCdCl<sub>3</sub>:Sb<sup>3+</sup>, multiple emission centers and trap states form competing carrier transfer pathways under steady excitation, leading to a time-dependent redistribution of excitation energy. Trapping introduces spectrally selective absorption overlapping the green Sb<sup>3+</sup> emission, resulting in trap-assisted reabsorption, while optically stimulated de-trapping preferentially feeds the lower energy Cd-Cl orange-near-infrared emission. The competition among trapping, trap-assisted reabsorption, and de-trapping establishes a dynamic steady state that continuously reshapes the emission spectrum. These results identify coupled trapping and de-trapping dynamics as the microscopic origin of excitation-time-driven spectral evolution in multi-emitter systems.