A First-Principles Explanation of the Luminescent Line Shape of SrLiAlN:Eu Phosphor for Light-Emitting Diode Applications
arXiv:2306.09162 · doi:10.1021/acs.chemmater.3c00537
Abstract
White light-emitting diodes are gaining popularity and are set to become the most common light source in the U.S. by 2025. However, their performance is still limited by the lack of an efficient red-emitting component with a narrow band emission. The red phosphor SrLiAlN:Eu is among the first promising phosphors with a small bandwidth for next-generation lighting, but the microscopic origin of this narrow emission remains elusive. In the present work, density functional theory, the SCF-constrained occupation method, and a generalized Huang-Rhys theory are used to provide an accurate description of the vibronic processes occurring at the two Sr sites that the Eu activator can occupy. The emission band shape of Eu(Sr1), with a zero-phonon line at 1.906 eV and a high luminescence intensity, is shown to be controlled by the coupling between the 5d-4f electronic transition and the low-frequency phonon modes associated with the Sr and Eu displacements along the Sr channel. The good agreement between our computations and experimental results allows us to provide a structural assignment of the observed total spectrum. By computing explicitly the effect of the thermal expansion on zero-phonon line energies, the agreement is extended to the temperature-dependent spectrum. These results provide insight into the electron-phonon coupling that accompanies the 5d-4f transition in similar UCrC-type phosphors. Furthermore, these results highlight the importance of the Sr channel in shaping the narrow emission of SrLiAlN:Eu, and they shed new light on the structure-property relations of such phosphors.
10 pages, 6 figures
References in corpus (14)
- First-principles theory of the luminescence lineshape for the triplet transition in diamond NV centre
- Luminescence quenching via deep defect states: A recombination pathway via oxygen vacancies in Ce-doped YAG
- Photoluminescence spectra of point defects in semiconductors: validation of first principles calculations
- Vibrational and vibronic structure of isolated point defects: the nitrogen-vacancy center in diamond
- First-principles Study of the Luminescence of Eu2+-doped Phosphors
- First-principles study of Ce doped lanthanum silicate nitride phosphors: Neutral excitation, Stokes shift, and luminescent center identification
- Thermal Expansion in Insulating Solids From First Principles
- Vibrational signatures for the identification of single-photon emitters in hexagonal boron nitride
- Assessment of First-Principles and Semiempirical Methodologies for Absorption and Emission Energies of Ce-Doped Luminescent Materials
- Full optimization of quasiharmonic free energy with anharmonic lattice model: Application to thermal expansion and pyroelectricity of wurtzite GaN and ZnO
- Quasiharmonic elastic constants corrected for deviatoric thermal stresses
- Importance of long-range channel Sr displacements for the narrow emission in Sr[LiAlON]:Eu phosphor
- Zero-point lattice expansion and band gap renormalization: Grüneisen approach versus free energy minimization
- Design rule for the emission linewidth of Eu-activated phosphors