Title :
Spectroscopy and fluorescence dynamics of (Tm3+,Tb3+) and (Tm3+,Eu3+) doped LiYF4 single crystals for 1.5-μm laser operation
Author :
Braud, Alain ; Girard, Sylvain ; Doualan, Jean Louis ; Moncorgé, Richard
Author_Institution :
ISMRA, Caen, France
fDate :
11/1/1998 12:00:00 AM
Abstract :
Fluorescence dynamics of the 3H4 and 3 F4 energy levels of Tm3+ ions in LiYF4 single crystals codoped with Tb3+ or Eu3+ ions were experimentally investigated and confronted with classical energy-transfer models: direct cross-relaxation-type energy transfers between donor D and acceptor A, where D=Tm3+ and A=Tb3+ or Eu3+ (static Forster-Dexter model extended by Inokuti-Hirayama) as well as energy migration between Tm3+ ions (hopping and diffusion models by Burshtein and Yokota-Tanimoto). The fluorescence decays were accurately described in the case of Tb3+ codoping because of resonant energy transfer, thus of more precise estimations of energy transfer parameters from the absorption and emission spectra. In the case of Eu3+ codoping, the Tm3+→Eu3+ energy transfers need to be phonon-assisted to compensate for the reduced overlap between the Tm3+ emission and Eu3+ absorption spectra and the models, though giving satisfactory results, appeared less powerful. Based on these results, optimized values for the dopant concentrations were finally derived to keep high the fluorescence quantum efficiency of 3H4 and to shorten the lifetime of the 3F4 energy levels of the Tm3+ ion in order to alleviate the problem of self-termination of the 3H 4→3F4 laser transition occurring around 1.5 μm
Keywords :
europium; fluorescence; impurity absorption spectra; infrared spectra; laser transitions; lithium compounds; radiative lifetimes; solid lasers; terbium; thulium; yttrium compounds; 1.5 mum; 1.5-μm laser operation; LiYF4:Tm,Eu; LiYF4:Tm,Tb; Tm3+,Eu3+:LiYF4 single crystal; Tm3+,Tb3+:LiYF4 single crystal; absorption spectra; acceptor; classical energy-transfer models; diffusion model; direct cross-relaxation-type energy transfers; donor; dopant concentration; emission spectra; energy levels; energy migration; fluorescence dynamics; fluorescence quantum efficiency; hopping model; laser transition; lifetime; phonon-assisted energy transfer; resonant energy transfer; self-termination; spectroscopy; static Forster-Dexter model; Crystalline materials; Crystals; Energy exchange; Erbium; Fluorescence; Laser excitation; Laser theory; Laser transitions; Pump lasers; Spectroscopy;
Journal_Title :
Quantum Electronics, IEEE Journal of