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Green emission from trivalent cerium doped LaAlO(3)/MgO nano-composite for photonic and latent finger printing applications

A series of Ce(3+) doped La(1−x)Ce(x)AlO(3)/MgO (x = 0, 0.7, 0.9, 1.0 and 2.0 mol%) nano-composites have successfully been synthesized employing the Pechini sol–gel method. XRD profiles assisted with Rietveld refinement results manifested the rhombohedral/face-centered structures of the two phases o...

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Autores principales: Makhija, Ashima, Sharma, Anjli, Dahiya, Sajjan, Deopa, Nisha, Malik, Rajesh, Punia, R., Maan, A. S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10201338/
https://www.ncbi.nlm.nih.gov/pubmed/37223647
http://dx.doi.org/10.1039/d3ra02078a
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author Makhija, Ashima
Sharma, Anjli
Dahiya, Sajjan
Deopa, Nisha
Malik, Rajesh
Punia, R.
Maan, A. S.
author_facet Makhija, Ashima
Sharma, Anjli
Dahiya, Sajjan
Deopa, Nisha
Malik, Rajesh
Punia, R.
Maan, A. S.
author_sort Makhija, Ashima
collection PubMed
description A series of Ce(3+) doped La(1−x)Ce(x)AlO(3)/MgO (x = 0, 0.7, 0.9, 1.0 and 2.0 mol%) nano-composites have successfully been synthesized employing the Pechini sol–gel method. XRD profiles assisted with Rietveld refinement results manifested the rhombohedral/face-centered structures of the two phases of the generated composite. Thermogravimetric results corroborate the crystallization temperature of the compound to be 900 °C, that further remains stable up to 1200 °C. Materials have been found to be wide band gap semi-conductors having E(g) in the range of 5.5–5.8 eV. Photoluminescence studies reveal their green emission under UV excitation of 272 nm. Application of Dexter's theory and Burshtein model to PL and TRPL profiles, respectively reveals the q–q multipole interlinkages to be the viable cause of concentration quenching beyond optimum concentration of 0.9 mol%. Shifting of the energy transfer route from cross-relaxation to migration assisted mechanism with Ce(3+) concentration has also been investigated. Other luminescence based parameters such as energy transfer probabilities, efficiencies, CIE and CCT have also been found to be in an admirable range. From the aforesaid results, it was observed that the optimized nano-composite (i.e. La(1−x)Ce(x)AlO(3)/MgO (x = 0.9 mol%)) can also be utilized for latent finger-printing (LFP) application that evinces its versatility for photonic as well as imaging applications.
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spelling pubmed-102013382023-05-23 Green emission from trivalent cerium doped LaAlO(3)/MgO nano-composite for photonic and latent finger printing applications Makhija, Ashima Sharma, Anjli Dahiya, Sajjan Deopa, Nisha Malik, Rajesh Punia, R. Maan, A. S. RSC Adv Chemistry A series of Ce(3+) doped La(1−x)Ce(x)AlO(3)/MgO (x = 0, 0.7, 0.9, 1.0 and 2.0 mol%) nano-composites have successfully been synthesized employing the Pechini sol–gel method. XRD profiles assisted with Rietveld refinement results manifested the rhombohedral/face-centered structures of the two phases of the generated composite. Thermogravimetric results corroborate the crystallization temperature of the compound to be 900 °C, that further remains stable up to 1200 °C. Materials have been found to be wide band gap semi-conductors having E(g) in the range of 5.5–5.8 eV. Photoluminescence studies reveal their green emission under UV excitation of 272 nm. Application of Dexter's theory and Burshtein model to PL and TRPL profiles, respectively reveals the q–q multipole interlinkages to be the viable cause of concentration quenching beyond optimum concentration of 0.9 mol%. Shifting of the energy transfer route from cross-relaxation to migration assisted mechanism with Ce(3+) concentration has also been investigated. Other luminescence based parameters such as energy transfer probabilities, efficiencies, CIE and CCT have also been found to be in an admirable range. From the aforesaid results, it was observed that the optimized nano-composite (i.e. La(1−x)Ce(x)AlO(3)/MgO (x = 0.9 mol%)) can also be utilized for latent finger-printing (LFP) application that evinces its versatility for photonic as well as imaging applications. The Royal Society of Chemistry 2023-05-22 /pmc/articles/PMC10201338/ /pubmed/37223647 http://dx.doi.org/10.1039/d3ra02078a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Makhija, Ashima
Sharma, Anjli
Dahiya, Sajjan
Deopa, Nisha
Malik, Rajesh
Punia, R.
Maan, A. S.
Green emission from trivalent cerium doped LaAlO(3)/MgO nano-composite for photonic and latent finger printing applications
title Green emission from trivalent cerium doped LaAlO(3)/MgO nano-composite for photonic and latent finger printing applications
title_full Green emission from trivalent cerium doped LaAlO(3)/MgO nano-composite for photonic and latent finger printing applications
title_fullStr Green emission from trivalent cerium doped LaAlO(3)/MgO nano-composite for photonic and latent finger printing applications
title_full_unstemmed Green emission from trivalent cerium doped LaAlO(3)/MgO nano-composite for photonic and latent finger printing applications
title_short Green emission from trivalent cerium doped LaAlO(3)/MgO nano-composite for photonic and latent finger printing applications
title_sort green emission from trivalent cerium doped laalo(3)/mgo nano-composite for photonic and latent finger printing applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10201338/
https://www.ncbi.nlm.nih.gov/pubmed/37223647
http://dx.doi.org/10.1039/d3ra02078a
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