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Physica B: Condensed MatterVolume 624, 1 January 2022, Article number 413454

An approximate deconvolution method for the luminescence intensity ratio calculations from overlapping emissions(Article)

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  • Vinča Institute of Nuclear Sciences - National Institute of the Republic of Serbia, University of Belgrade, P.O. Box 522, Belgrade, 11001, Serbia

Abstract

Two experimental practices in luminescence intensity ratio (LIR) thermometry based on the spectral deconvolution (SD) and separation at chosen wavelength (WS) were analyzed for the case when sharp emission is overlapping with a broad one, which is frequently the case for Cr3+ and Mn4+ in the intermediate or strong crystal fields. Their performances were compared showing that, depending on several parameters, separation at chosen wavelength method gives lower sensitivities than spectral deconvolution one. With requirement that the sharp emission quenches at high temperatures, which is also the case for the mentioned luminescent centers, an alternative method, named approximate deconvolution (AD) is proposed. The novel method retains the simplicity of the WS, while matching the sensitivities of the SD method. The detailed algorithm for the AD method is presented. Although the temperature resolution is not improved, the AD method allows fit to the Boltzmann equation and extraction of the physically relevant parameters. All three methods are compared using Cr3+ emission in LiAl5O8, MgAl2O4 and YAG showing that WS gives significantly lower sensitivities than SD and AD, while SD and AD are highly matching in performance. © 2021 Elsevier B.V.

Author keywords

Intensity ratioLuminescenceLuminescence thermometryPhosphorsSpectral deconvolution

Indexed keywords

Engineering controlled terms:Aluminum compoundsBoltzmann equationChromium compoundsLithium compoundsMagnesium compoundsThermometersYttrium aluminum garnet
Engineering uncontrolled termsApproximate deconvolutionCr 3+Deconvolution methodIntensity ratioLow sensitivityLuminescence intensityLuminescence thermometryPerformanceSharp emissionSpectral deconvolution
Engineering main heading:Luminescence

Funding details

Funding sponsor Funding number Acronym
G5751
Ministarstvo Prosvete, Nauke i Tehnološkog RazvojaMPNTR
  • 1

    Authors acknowledge funding from the NATO Science for Peace and Security Programme under grant id. [ G5751 ] and from the Ministry of Education, Science, and Technological Development of the Republic of Serbia.

  • ISSN: 09214526
  • CODEN: PHYBE
  • Source Type: Journal
  • Original language: English
  • DOI: 10.1016/j.physb.2021.413454
  • Document Type: Article
  • Publisher: Elsevier B.V.

  Ćirić, A.; Vinča Institute of Nuclear Sciences - National Institute of the Republic of Serbia, University of Belgrade, P.O. Box 522, Belgrade, Serbia;
© Copyright 2021 Elsevier B.V., All rights reserved.

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