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The first principles calculation and temperature-sensitive luminescence behavior of optimized red phosphor Mg2Al4Si5O18: Eu3+.

Authors :
Jing, Yue
Chen, Qinjia
Sui, Mingyu
Ci, Zhipeng
Han, Lili
Chen, Yanwen
Zhang, Jiachi
Ma, Ji
Wang, Yuhua
Source :
Journal of Luminescence. Jan2017, Vol. 181, p49-55. 7p.
Publication Year :
2017

Abstract

Eu 3+ doped Mg 2 Al 4 Si 5 O 18 phosphors were prepared by the solid-state reaction. The first principles calculation, XRD, diffuse reflection spectra, photoluminescence spectra and thermal quenching are carried out to investigate the electron structure, crystal structure, photoluminescence and thermal properties. The calculation results show that Mg 2 Al 4 Si 5 O 18 possesses the direct band gap of about 5.1 eV. With the introduction of Eu 3+ , the energy gap becomes obviously smaller due to the discontinuity of exchange-correlation energy. Between HOMOs and LOMOs, a series of f orbitals of Eu 3+ can be observed, which is the essential condition to realize the efficient 4 f –4 f transitions of Eu 3+ . The experimental results indicate that the samples can efficiently absorb the UV-light and emit the red light with the highest peak at 614 nm. With the co-doping of Bi 3+ as sensitizer, the emission intensity of Eu 3+ increases by about 49% due to the energy transfer between Bi 3+ and Eu 3+ . With the introduction of Li + /Na + /K + as charge compensators, the emission intensities of Mg 2 Al 4 Si 5 O 18 : Eu 3+ are enhanced by about 22%, 18% and 5%. With the temperature increase, the emission intensity of all samples, especially the Bi 3+ doped samples, dramatically declines, which reveals two important effects: one is that the Eu 3+ emission is very sensitive to temperature, and other is that the complex energy transfer process among the excited and ground states of Eu 3+ , Bi 3+ or host absorption occurs. To explain the degradation, the mechanism based on the configurational coordinate diagram is proposed and this model could be helpful for the understanding of the energy transfer mechanism among the various energy levels in the process of temperature change. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00222313
Volume :
181
Database :
Academic Search Index
Journal :
Journal of Luminescence
Publication Type :
Academic Journal
Accession number :
119370429
Full Text :
https://doi.org/10.1016/j.jlumin.2016.08.054