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Influence of the First Cation A of A2SiF6:Mn4+ (A = K, Rb, Cs) Phosphors on Their Geometric Structures and the Optical Transition Energies: First-Principles Analysis

  • Mekhrdod S. Kurboniyon*
  • , Shamsulkhak Nurulkhakov
  • , Bibo Lou
  • , Khaiyom Rahmonov
  • , Alok M. Srivastava
  • , Mikhail G. Brik
  • , Tomoyuki Yamamoto
  • , Chong Geng Ma*
  • *Corresponding author for this work
  • Chongqing University of Posts and Telecommunications
  • Academy of Sciences of the Republic of Tadzhikistan
  • Waseda University
  • Current Lighting Solutions LLC
  • University of Belgrade
  • University of Tartu
  • Academy of Romanian Scientists

Research output: Contribution to journalArticlepeer-review

Abstract

First-principles calculations are performed for Mn4+-doped A2SiF6 (where A = K, Rb, and Cs) to investigate the influence of A-site cations on the geometric structures and optical transition energies of the 2E and 4T2 excited states. The geometric structures of the 4A2 ground state and the 2E and 4T2 excited states were successfully modeled using the delta self-consistent field (ΔSCF) method and their optical transition energies were evaluated for Mn4+-doped A2SiF6, which are in good agreement with the experimental values. Notably, the relationships between the zero-phonon line (ZPL) energy of the 4T2 state and the bond length of the Mn4+-F bond are investigated in detail. The challenges of computational convergence were effectively addressed through the proposed fractional particle occupancy schemes for modeling the 4T2 state. The computational techniques developed in this study can be applied to other 3d3 activator ion/host matrix combinations, providing valuable insights into their structural and optical properties.

Original languageEnglish
Article number066003
Pages (from-to)962-969
Number of pages8
JournalJournal of Electronic Materials
Volume54
Issue number2
DOIs
Publication statusPublished - Feb 2025
Externally publishedYes

Keywords

  • E and T excited states
  • First-principles calculations
  • Mn impurity
  • optical transition energies

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