Lh. Robins et Ja. Tuchman, PHOTOLUMINESCENCE STUDIES OF SM2-EU,SM( IN THE STIMULABLE PHOSPHOR SRS), Physical review. B, Condensed matter, 57(19), 1998, pp. 12094-12103
The doubly rare-earth doped phosphor SrS:Eu,Sm is representative of a
class of stimulable phosphors that may find application in optical dat
a storage and related areas of photonic technology. The infrared photo
luminescence (PL) from the Sm2+ ions is a potentially useful probe of
the ''written'' state of this phosphor, i.e., the right-hand side of t
he charge-transfer reaction (Eu2++Sm(3+)reversible arrow Eu3++Sm2+). I
n the present study, several properties of the Sm2+ PL from bulk ceram
ic SrS:Eu,Sm were examined, including the emission spectrum, temperatu
re dependence from 14 to 300 K, electron-phonon coupling, excitation s
pectrum, and excitation intensity dependence. The full width at half m
aximum of the PL emission spectrum, W(T), was found to increase with t
emperature in a manner consistent with a linear electron-phonon coupli
ng model, W(T) = W-o[tanh(Omega/(2k(B)T))](-1/2), with W-o=0.190 eV an
d coupled phonon energy Omega=0.026 eV. Periodic oscillations in the P
L spectrum at T<60 K provide direct evidence for coupling to two phono
n modes, with phonon energies Omega(1) = 0.0155 eV and Omega(2) = 0.02
8 eV. The peak of the emission spectrum occurs at 0.709 eV at 14 K and
increases with temperature at a rate 1.9x10(-4) eV/K. The electron-ph
onon coupling model predicts that the corresponding optical absorption
peak, which is anti-Stokes shifted relative to the PL peak, should oc
cur at 1.17 eV at low temperature, or 1.23 eV at room temperature. Pre
vious measurements of the charge-transfer excitation spectrum in SrS:E
u,Sm showed a peak at 1.25 eV, in good agreement with the model predic
tion. The PL excitation spectrum from 1.7 to 6.2 eV was measured at T=
14 K. Excitation peaks were observed at 2.08 eV, ascribed to absorptio
n to a higher excited Sm2+ state; at 2.65 eV, ascribed to Eu2+ absorpt
ion followed by Eu-->Sm charge transfer; at 2.92 eV; and at 4.49 eV, a
scribed to interband excitation of the SrS. [S0163-1829(98)03819-3].