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Light‐induced electrons suppressed by Eu 3+ ions doped in Ca 11.94− x Sr x Al 14 O 33 caged phosphors for LED and FEDs
Author(s) -
Bian Hongyu,
Liu Yuxue,
Yan Duanting,
Zhu Hancheng,
Liu Chunguang,
Xu Changshan,
Wang Xiaojun,
Zhang Hong
Publication year - 2017
Publication title -
journal of the american ceramic society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.9
H-Index - 196
eISSN - 1551-2916
pISSN - 0002-7820
DOI - 10.1111/jace.14866
Subject(s) - phosphor , europium , analytical chemistry (journal) , doping , luminescence , ion , rietveld refinement , chemistry , materials science , crystallography , crystal structure , optoelectronics , organic chemistry , chromatography
Control of light‐induced electron generation is of vital importance for the application of caged phosphors. For Eu‐doped Ca 11.94− x Sr x Al 14 O 33 caged phosphors, the suppressed effect of strontium doping on the light‐induced electrons is observed compared to the europium‐free Ca 11.94− x Sr x Al 14 O 33 phosphors. In the presence of europium ions, Sr doping will promote the reduction of Eu 3+ to Eu 2+ . The Rietveld refinement suggests that unit cell volumes of the Ca 11.94− x Sr x Al 14 O 33 :Eu 0.06 samples are expanded when Ca 2+ ions are replaced by Sr 2+ ions. The absorption and FTIR transmittance spectra confirm that the competitive reaction of encaged O 2− anions with H 2 is suppressed. For the sample ( x =0.48), the higher thermal activation energy (~0.40 eV) for luminescence quenching can be attributed to the more rigid framework structure after Sr doping. For Ca 11.94− x Sr x Al 14 O 33 :Eu 0.06 phosphors, their emission colours are tuned from red to purple upon 254 nm excitation and from pink to blue under electron beam excitation through Sr substitution. The insight gained from this work may have a significant guiding to design new phosphors for LED and FEDs and novel nanocaged mutifunctional materials.
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