The structure of the low-temperature 4f^N→4f^N-15d excitation spectra of Eu^3+ and Tb^3+ doped in crystals LiYF4, YPO4 and CaF2 measured by van Pieterson et al. in 2002 was analyzed and assigned based on the simple...The structure of the low-temperature 4f^N→4f^N-15d excitation spectra of Eu^3+ and Tb^3+ doped in crystals LiYF4, YPO4 and CaF2 measured by van Pieterson et al. in 2002 was analyzed and assigned based on the simple model proposed by Duan and co-workers in the last few years. Some complemental discussion on effects of J-mixing on the f-d transition intensities for Eu^3+ due to the f-electron crystal-field interaction Hcf(f), which was ignored in the simple mod- el, was presented. Some previously unexplained peaks for Tb^3 + were interpreted to be spin-forbidden transitions to higher 5d crystal-field levels, or assigned to be f→d excitations with the core 4f7 excited from ^8S to ^6P, ^6I and ^6D, respectively. It is shown that the main structure of 4f-Sd excitation spectra of Eu^3+ and Tb^3+ can be well interpreted with the simple model.展开更多
文摘The structure of the low-temperature 4f^N→4f^N-15d excitation spectra of Eu^3+ and Tb^3+ doped in crystals LiYF4, YPO4 and CaF2 measured by van Pieterson et al. in 2002 was analyzed and assigned based on the simple model proposed by Duan and co-workers in the last few years. Some complemental discussion on effects of J-mixing on the f-d transition intensities for Eu^3+ due to the f-electron crystal-field interaction Hcf(f), which was ignored in the simple mod- el, was presented. Some previously unexplained peaks for Tb^3 + were interpreted to be spin-forbidden transitions to higher 5d crystal-field levels, or assigned to be f→d excitations with the core 4f7 excited from ^8S to ^6P, ^6I and ^6D, respectively. It is shown that the main structure of 4f-Sd excitation spectra of Eu^3+ and Tb^3+ can be well interpreted with the simple model.