POSSIBLE WAYS OF RELAXATIONS FOR EXCITED STATES OF RARE EARTH IONS IN AMORPHOUS MEDIA

1985 ◽  
Vol 46 (C7) ◽  
pp. C7-349-C7-355 ◽  
Author(s):  
R. Reisfeld ◽  
M. Eyal
2019 ◽  
Vol 122 (24) ◽  
Author(s):  
Sacha Welinski ◽  
Philip J. T. Woodburn ◽  
Nikolai Lauk ◽  
Rufus L. Cone ◽  
Christoph Simon ◽  
...  

2001 ◽  
Vol 107 (2) ◽  
pp. 235-240 ◽  
Author(s):  
M.F. Joubert ◽  
Y. Guyot ◽  
B. Jacquier ◽  
J.P. Chaminade ◽  
A. Garcia

Author(s):  
U. V. VALIEV ◽  
D. R. DZHURAEYV ◽  
V. NEKVASIL ◽  
K. S. SAIDOV

2016 ◽  
Vol 846 ◽  
pp. 131-136
Author(s):  
Nurhafizah Hasim ◽  
Md Supar Rohani ◽  
Md Rahim Sahar ◽  
Sib Krishna Ghoshal

Achieving tuneable photoluminescence via controlled co-doping of rare earth ions in lithium niobate based glasses are challenging. A series of Er3+/ Nd3+ co-doped tellurite glasses of composition (70-x-y) TeO2 – 15 Li2CO3 – 15 Nb2O5 – (x) Er2O3 – (y) Nd2O3 with x = 0; 1.0 mol % and 0 ≤ y ≤ 1.0 mol % are prepared using melt quenching technique. The influence of co-dopants on the emission properties is analyzed and discussed using partial energy level diagram of rare earth ions. The dopants concentration dependent physical properties such as refractive index, molar volume, density, polarizability and molar refractions are determined. The down-converted luminescence spectra for 2G9/2 à4I9/2 transition reveal a strong green emission band centred at 497 nm is attributed to the energy transfer from erbium to neodymium ion. The emission spectra exhibit five prominent peaks centred at 497, 539, 553, 616 and 634 nm corresponding to the transitions from 2H11/2, 4S3/2 and 4F9/2 excited states to the ground state of Er3+ ion and the transitions from 2G9/2, 2G7/2, 2H11/2 and 4F9/2 excited states to ground state of Nd3+ ion. The highest intensity is achieved for x = y = 1.0 mol%. The excellent luminescence response suggests that our glasses may be nominated for solid state lasers and other photonic applications.


1993 ◽  
Vol 301 ◽  
Author(s):  
H.J. Lozykowski

ABSTRACTIn this work we have developed a model for the kinetics of the energy transfer from the host lattice to the localized core excited states of rare earth isoelectronic structured traps (REI-trap). We have derive a set of differential equations for semi-insulating semiconductor governing the kinetics of rare earth luminescence. The numerically simulated rise and decay times of luminescence show a good quantitative agreement with the experimental data obtained for InP:Yb, over a wide range of generation rates.


In recent work on the rare-earth double nitrates, it has been found necessary to extend the theory of crystal fields to cases of C 3 ­v ­ symmetry. Operator equivalences are given for the potentials V 3 4 and V 3 6' , defined by ∑ z ( x 3 - 3 xy 2 ) and Ʃ(11 z 3 - 3 zr 2 ) ( x 3 - 3 xy 2 ) respectively, and their matrix elements tabulated over a range of J (the total angular momentum) which includes the ground states of all the rare-earth ions. Operator-equivalent factors are given for certain excited levels in praseodymium and neodymium ions, and a method is described for finding these factors for levels which derive from terms that occur twice in a configuration of the form f n . The dependence on J and J z of the matrix elements of the crystal-field interaction between different J levels is given for the components of a crystal field with C 3 v symmetry.


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