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Impact of crystal structure on optical properties and temperature sensing behavior of NaYF(4):Yb(3+)/Er(3+) nanoparticles

We report a comprehensive study of the structural, morphological, and optical properties, and UC-based ratiometric temperature sensing behavior of (α) cubic and (β) hexagonal phases of NaYF(4):Yb(3+)/Er(3+) nanoparticles. The α-NaYF(4):Yb(3+)/Er(3+) and β-NaYF(4):Yb(3+)/Er(3+) nanoparticles were syn...

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Detalles Bibliográficos
Autores principales: Dubey, Charu, Yadav, Anjana, Baloni, Diksha, Kachhap, Santosh, Singh, Sunil Kumar, Singh, Akhilesh Kumar
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/PMC10334709/
https://www.ncbi.nlm.nih.gov/pubmed/37441037
http://dx.doi.org/10.1039/d3ra03148a
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author Dubey, Charu
Yadav, Anjana
Baloni, Diksha
Kachhap, Santosh
Singh, Sunil Kumar
Singh, Akhilesh Kumar
author_facet Dubey, Charu
Yadav, Anjana
Baloni, Diksha
Kachhap, Santosh
Singh, Sunil Kumar
Singh, Akhilesh Kumar
author_sort Dubey, Charu
collection PubMed
description We report a comprehensive study of the structural, morphological, and optical properties, and UC-based ratiometric temperature sensing behavior of (α) cubic and (β) hexagonal phases of NaYF(4):Yb(3+)/Er(3+) nanoparticles. The α-NaYF(4):Yb(3+)/Er(3+) and β-NaYF(4):Yb(3+)/Er(3+) nanoparticles were synthesized using co-precipitation and hydrothermal methods, respectively. Powder X-ray diffraction studies confirmed the phase purity of the samples. The morphological studies show uniform particle sizes of both phases; the average particle size of α-NaYF(4):Yb(3+)/Er(3+) and β-NaYF(4):Yb(3+)/Er(3+) was 9.2 nm and 29 nm, respectively. The Raman spectra reveal five sharp peaks at 253 cm(−1), 307 cm(−1), 359 cm(−1), 485 cm(−1), and 628 cm(−1) for β-NaYF(4):Yb(3+)/Er(3+), whereas α-NaYF(4):Yb(3+)/Er(3+) shows two broad peaks centred at 272 cm(−1) and 721 cm(−1). The optical property measurements show that α- and β-NaYF(4):Yb(3+)/Er(3+) phases have distinct upconversion emission and temperature sensing behavior. The upconversion emission measurements show that β-NaYF(4):Yb(3+)/Er(3+) has higher overall emission intensities and green/red emission intensity ratio. The temperature-dependent upconversion emission measurements show that α-NaYF(4):Yb(3+)/Er(3+) has higher energy separation between (2)H(11/2) and (4)S(3/2) energy states. The temperature sensing performed utilizing these thermally coupled energy levels shows a maximum sensitivity of 0.0069 K(−1) at 543 K and 0.016 K(−1) at 422 K for β-NaYF(4):Yb(3+)/Er(3+) and α-NaYF(4):Yb(3+)/Er(3+), respectively.
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spelling pubmed-103347092023-07-12 Impact of crystal structure on optical properties and temperature sensing behavior of NaYF(4):Yb(3+)/Er(3+) nanoparticles Dubey, Charu Yadav, Anjana Baloni, Diksha Kachhap, Santosh Singh, Sunil Kumar Singh, Akhilesh Kumar RSC Adv Chemistry We report a comprehensive study of the structural, morphological, and optical properties, and UC-based ratiometric temperature sensing behavior of (α) cubic and (β) hexagonal phases of NaYF(4):Yb(3+)/Er(3+) nanoparticles. The α-NaYF(4):Yb(3+)/Er(3+) and β-NaYF(4):Yb(3+)/Er(3+) nanoparticles were synthesized using co-precipitation and hydrothermal methods, respectively. Powder X-ray diffraction studies confirmed the phase purity of the samples. The morphological studies show uniform particle sizes of both phases; the average particle size of α-NaYF(4):Yb(3+)/Er(3+) and β-NaYF(4):Yb(3+)/Er(3+) was 9.2 nm and 29 nm, respectively. The Raman spectra reveal five sharp peaks at 253 cm(−1), 307 cm(−1), 359 cm(−1), 485 cm(−1), and 628 cm(−1) for β-NaYF(4):Yb(3+)/Er(3+), whereas α-NaYF(4):Yb(3+)/Er(3+) shows two broad peaks centred at 272 cm(−1) and 721 cm(−1). The optical property measurements show that α- and β-NaYF(4):Yb(3+)/Er(3+) phases have distinct upconversion emission and temperature sensing behavior. The upconversion emission measurements show that β-NaYF(4):Yb(3+)/Er(3+) has higher overall emission intensities and green/red emission intensity ratio. The temperature-dependent upconversion emission measurements show that α-NaYF(4):Yb(3+)/Er(3+) has higher energy separation between (2)H(11/2) and (4)S(3/2) energy states. The temperature sensing performed utilizing these thermally coupled energy levels shows a maximum sensitivity of 0.0069 K(−1) at 543 K and 0.016 K(−1) at 422 K for β-NaYF(4):Yb(3+)/Er(3+) and α-NaYF(4):Yb(3+)/Er(3+), respectively. The Royal Society of Chemistry 2023-07-11 /pmc/articles/PMC10334709/ /pubmed/37441037 http://dx.doi.org/10.1039/d3ra03148a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Dubey, Charu
Yadav, Anjana
Baloni, Diksha
Kachhap, Santosh
Singh, Sunil Kumar
Singh, Akhilesh Kumar
Impact of crystal structure on optical properties and temperature sensing behavior of NaYF(4):Yb(3+)/Er(3+) nanoparticles
title Impact of crystal structure on optical properties and temperature sensing behavior of NaYF(4):Yb(3+)/Er(3+) nanoparticles
title_full Impact of crystal structure on optical properties and temperature sensing behavior of NaYF(4):Yb(3+)/Er(3+) nanoparticles
title_fullStr Impact of crystal structure on optical properties and temperature sensing behavior of NaYF(4):Yb(3+)/Er(3+) nanoparticles
title_full_unstemmed Impact of crystal structure on optical properties and temperature sensing behavior of NaYF(4):Yb(3+)/Er(3+) nanoparticles
title_short Impact of crystal structure on optical properties and temperature sensing behavior of NaYF(4):Yb(3+)/Er(3+) nanoparticles
title_sort impact of crystal structure on optical properties and temperature sensing behavior of nayf(4):yb(3+)/er(3+) nanoparticles
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10334709/
https://www.ncbi.nlm.nih.gov/pubmed/37441037
http://dx.doi.org/10.1039/d3ra03148a
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