Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5402918 | Journal of Luminescence | 2009 | 4 Pages |
Abstract
Two theoretical methods, the perturbation theory method (PTM) and the complete diagonalization (of energy matrix) method (CDM), are applied to calculate the spin-Hamiltonian parameters (g-factors gâ¥, g⥠and hyperfine structure constants Aâ¥, Aâ¥, obtained from electron paramagnetic resonance (EPR) spectra) and d-d transitions (obtained from optical spectra) for two tetragonal Cu2+ centers in Ba2ZnF6:Cu2+ crystals. The Cu2+(I) ion replaces the Zn2+ ion at tetragonally compressed octahedral coordination and has the ground state 2A1(|dz2ã), whereas the Cu2+(II) ion is at an interstitial site with a square-planar Fâcoordination and has the ground state 2B2(|dx2-y2ã). The calculated spin-Hamiltonian parameters and d-d transitions from the PTM and CDM coincide and are in reasonable agreement with the experimental values. This suggests that both methods are effective for the theoretical studies of EPR and optical spectral data for 3d9 ions in tetragonal symmetry with different ground states. The defect structures of the two Cu2+ centers in Ba2ZnF6:Cu2+ are also estimated.
Keywords
Related Topics
Physical Sciences and Engineering
Chemistry
Physical and Theoretical Chemistry
Authors
Zhang Dong-Ting, He Lv, Yang Wei-Qing, Zheng Wen-Chen,