A facile method to describe the electron transfer and energy transfer processes among lanthanide ions is presented based on the temperature dependent donor luminescence decay kinetics. The electron transfer process in Ce3+-Yb3+ exhibits a steady rise with temperature, whereas the Ce3+-Tb3+ energy transfer remains nearly unaffected. This feature has been investigated using the rate equation modeling and a methodology for the quantitative estimation of interaction parameters is presented. Moreover, the overall consequences of electron transfer and energy transfer process on donor-acceptor luminescence behavior, quantum efficiency, and donor luminescence decay kinetics are discussed in borate glass host. The results in this study propose a straight forward approach to distinguish the electron transfer and energy transfer processes between lanthanide ions in dielectric hosts, which is highly advantageous in view of the recent developments on lanthanide doped materials for spectral conversion, persistent luminescence, and related applications.

1.
J. M.
Maijer
,
L.
Aarts
,
B. M.
van der Ende
,
T. J. H.
Vligt
, and
A.
Meijerink
,
Phys. Rev. B
81
,
035107
(
2010
).
2.
D.
Serrano
,
A.
Braud
,
J. L.
Doualan
,
W.
Bolaños
,
R.
Moncorgé
, and
P.
Camy
,
Phys. Rev. B
88
,
205144
(
2013
).
3.
J. L.
Sommerdijk
,
A.
Bril
, and
A. W.
de Jager
,
J. Lumin.
8
,
341
(
1977
).
4.
B. M.
van der Ende
,
L.
Aarts
, and
A.
Meijerink
,
Phys. Chem. Chem. Phys.
11
,
11081
(
2009
).
5.
R. T.
Wegh
,
H.
Donker
,
K. D.
Oskam
, and
A.
Meijerink
,
Science
283
,
663
(
1999
).
7.
L.
Aarts
,
B. M.
van der Ende
, and
A.
Meijerink
,
J. Appl. Phys.
106
,
023522
(
2009
).
8.
A.
Boccolini
,
J.
Marques-Hueso
,
D.
Chen
,
Y.
Wang
, and
B. S.
Richards
,
Sol. Energy Mater. Sol. Cells
122
,
8
(
2014
).
9.
Z.
Liu
,
J.
Li
,
L.
Yang
,
Q.
Chen
,
Y.
Chu
, and
N.
Dai
,
Sol. Energy Mater. Sol. Cells
122
,
46
(
2014
).
10.
P.
Song
and
C.
Jiang
,
IEEE Photonics J.
5
,
8400110
(
2014
).
11.
J.
Zhou
,
Y.
Zhuang
,
S.
Ye
,
Y.
Teng
,
G.
Lin
,
B.
Zhu
,
J.
Xie
, and
J.
Qiu
,
Appl. Plys. Lett.
95
,
141101
(
2009
).
12.
D. C.
Yu
,
F. T.
Rabouw
,
W. Q.
Boon
,
T.
Kieboom
,
S.
Ye
,
Q. Y.
Zhang
, and
A.
Meijerink
,
Phys. Rev. B
90
,
165126
(
2014
).
13.
A. D.
Sontakke
,
J.
Ueda
,
Y.
Katayama
,
Y.
Zhuang
,
P.
Dorenbos
, and
S.
Tanabe
,
J. Appl. Phys.
117
,
013105
(
2015
).
14.
J.
Ueda
and
S.
Tanabe
,
J. Appl. Phys.
106
,
043101
(
2009
).
15.
F.
You
,
A. J. J.
Bos
,
Q.
Shi
,
S.
Huang
, and
P.
Dorenbos
,
J. Phys.: Condens. Matter
23
,
215502
(
2011
).
16.
R.
Huber
,
Angew. Chem. Int. Ed.
28
,
848
(
1989
).
17.
R. C.
Powel
,
Physics of Solid State Laser Materials
(
Springer-Verlag
,
New York
,
1998
).
18.
P.
Dorenbos
,
A. J. J.
Bos
, and
N. R. J.
Poolton
,
Phys. Rev. B
82
,
195127
(
2010
).
19.
P.
Dorenbos
,
J. Mater. Chem.
22
,
22344
(
2012
).
20.
A. A.
Setlur
and
J. J.
Shiang
,
J. Phys. Chem. C
114
,
2792
(
2010
).
21.
J. C.
de Mello
,
H. F.
Wittmann
, and
R. H.
Friend
,
Adv. Mater.
9
,
230
(
1997
).
22.
T.
Fujii
,
K.
Kodaira
,
O.
Kawauchi
, and
N.
Tanaka
,
J. Phys. Chem. B
101
,
10631
(
1997
).
23.
P. L.
Houston
,
Chemical Kinetics and Reaction Dynamics
(
McGraw-Hill
,
New York
2001
).
24.
J.
Ueda
and
S.
Tanabe
,
J. Appl. Phys.
110
,
053102
(
2011
).
25.
R. A.
Marcus
and
N.
Sutin
,
Biochim. Biophys. Acta
811
,
265
(
1985
).
26.
A. D.
Sontakke
and
K.
Annapurna
,
J. Appl. Phys.
112
,
013510
(
2012
).
27.
A.
Lecointre
,
A.
Bessière
,
A. J. J.
Bos
,
P.
Dorenbos
,
B.
Viana
, and
S.
Jacquart
,
J. Phys. Chem. C
115
,
4217
(
2011
).
28.
J. M.
Ogiegło
,
A.
Katelnikovas
,
A.
Zych
,
T.
Jüstel
,
A.
Meijerink
, and
C. R.
Ronda
,
J. Phys. Chem. A
117
,
2479
(
2013
).
29.
V.
Bachmann
,
C.
Ronda
, and
A.
Meijerink
,
Chem. Mater.
21
,
2077
(
2009
).
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