Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses

Improving the up-conversion efficiency is the key issue in tellurite glasses. The quantum efficiency, radiative transition rate and lifetimes of excited states are greatly influenced by the optical properties of the host material, ligand field, multiphonon relaxation processes, impurities, temperatu...

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Main Authors: Ghoshal, S. K., Sahar, M. R., Tewari, H. S., Rohani, M. S.
Format: Article
Published: American Institute of Physics 2011
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Online Access:http://eprints.utm.my/id/eprint/45047/
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spelling my.utm.450472017-10-01T03:34:24Z http://eprints.utm.my/id/eprint/45047/ Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses Ghoshal, S. K. Sahar, M. R. Tewari, H. S. Rohani, M. S. QD Chemistry Improving the up-conversion efficiency is the key issue in tellurite glasses. The quantum efficiency, radiative transition rate and lifetimes of excited states are greatly influenced by the optical properties of the host material, ligand field, multiphonon relaxation processes, impurities, temperature and concentration of erbium ions. We develop a comprehensive 4-level model to examine the radiative and nonradiative (NR) decay processes for the green (4S3/2?4I15/2)(4S3/2?4I15/2) and red (4F9/2?4I15/2)(4F9/2?4I15/2) emission over a temperature range of (10–340 K) and concentration range of (0.1–4.5 mol.%). Concentration dependent enhancement and thermal quenching of efficiency for up-conversion is investigated using the derived rate equations. These features are attributed to the NR energy transfer processes, trapped impurity effects, and thermal assisted hopping. The unusual nature of temperature and concentration dependent quenching effects for green and red emission is queries for further investigations. It is further suggested that to achieve higher infrared to visible up-converted efficiency in tellurite glasses the NR channels for energy and charge transfer by phonon and impurity mediated process has to be minimized. Our results on pump power dependent emission intensity, quantum efficiency, luminescence intensity, radiative lifetimes, and transition probabilities are in conformity with other experimental findings. American Institute of Physics 2011 Article PeerReviewed Ghoshal, S. K. and Sahar, M. R. and Tewari, H. S. and Rohani, M. S. (2011) Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses. AIP Conference Proceedings, 1372 . pp. 275-281. ISSN 0094-243X
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic QD Chemistry
spellingShingle QD Chemistry
Ghoshal, S. K.
Sahar, M. R.
Tewari, H. S.
Rohani, M. S.
Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses
description Improving the up-conversion efficiency is the key issue in tellurite glasses. The quantum efficiency, radiative transition rate and lifetimes of excited states are greatly influenced by the optical properties of the host material, ligand field, multiphonon relaxation processes, impurities, temperature and concentration of erbium ions. We develop a comprehensive 4-level model to examine the radiative and nonradiative (NR) decay processes for the green (4S3/2?4I15/2)(4S3/2?4I15/2) and red (4F9/2?4I15/2)(4F9/2?4I15/2) emission over a temperature range of (10–340 K) and concentration range of (0.1–4.5 mol.%). Concentration dependent enhancement and thermal quenching of efficiency for up-conversion is investigated using the derived rate equations. These features are attributed to the NR energy transfer processes, trapped impurity effects, and thermal assisted hopping. The unusual nature of temperature and concentration dependent quenching effects for green and red emission is queries for further investigations. It is further suggested that to achieve higher infrared to visible up-converted efficiency in tellurite glasses the NR channels for energy and charge transfer by phonon and impurity mediated process has to be minimized. Our results on pump power dependent emission intensity, quantum efficiency, luminescence intensity, radiative lifetimes, and transition probabilities are in conformity with other experimental findings.
format Article
author Ghoshal, S. K.
Sahar, M. R.
Tewari, H. S.
Rohani, M. S.
author_facet Ghoshal, S. K.
Sahar, M. R.
Tewari, H. S.
Rohani, M. S.
author_sort Ghoshal, S. K.
title Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses
title_short Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses
title_full Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses
title_fullStr Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses
title_full_unstemmed Model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses
title_sort model investigation of temperature and concentration dependent luminescence of erbium-doped tellurite glasses
publisher American Institute of Physics
publishDate 2011
url http://eprints.utm.my/id/eprint/45047/
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score 13.160551