TY - JOUR
T1 - Luminescence properties from erbium oxide nanocrystals dispersed in titania/organically modified silane composite sol-gel thin films
AU - Que, W.
AU - Zhou, Y.
AU - Lam, Y. L.
AU - Pita, K.
AU - Chan, Y. C.
AU - Kam, C. H.
PY - 2001
Y1 - 2001
N2 - Luminescence properties from erbium (III) oxide nanocrystals dispersed in titania/organically modified silane composite thin films were studied. Erbium oxide nanocrystals were prepared by an inverse microemulsion technique. A strong room-temperature photoluminescence was observed at 1.531 μm, with the full width at half maximum (FWHM) of 22 nm due to intra-atomic transitions between 4I13/2 and 4I15/2 levels in the erbium (III) ion. The shape, peak position, and FWHM of the photoluminescence signals from the composite thin films were quite comparable to those prepared by other methods. The photoluminescence peak of the composite thin films showed a maximum intensity at the heat-treatment temperature of 300°C. A room-temperature green up-conversion emission at 543 nm (4S3/2 → 4I15/2) was observed for the composite thin films with different heat-treatment temperatures upon excitation at 993 nm. The up-conversion emission mechanism was explained by means of an energy-level diagram and the lifetime of the visible up-conversion emission was measured.
AB - Luminescence properties from erbium (III) oxide nanocrystals dispersed in titania/organically modified silane composite thin films were studied. Erbium oxide nanocrystals were prepared by an inverse microemulsion technique. A strong room-temperature photoluminescence was observed at 1.531 μm, with the full width at half maximum (FWHM) of 22 nm due to intra-atomic transitions between 4I13/2 and 4I15/2 levels in the erbium (III) ion. The shape, peak position, and FWHM of the photoluminescence signals from the composite thin films were quite comparable to those prepared by other methods. The photoluminescence peak of the composite thin films showed a maximum intensity at the heat-treatment temperature of 300°C. A room-temperature green up-conversion emission at 543 nm (4S3/2 → 4I15/2) was observed for the composite thin films with different heat-treatment temperatures upon excitation at 993 nm. The up-conversion emission mechanism was explained by means of an energy-level diagram and the lifetime of the visible up-conversion emission was measured.
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U2 - 10.1007/s003390000623
DO - 10.1007/s003390000623
M3 - Article
AN - SCOPUS:0034890678
SN - 0947-8396
VL - 73
SP - 209
EP - 213
JO - Applied Physics A: Materials Science and Processing
JF - Applied Physics A: Materials Science and Processing
IS - 2
ER -