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Development of Er(3+), Yb(3+) Co-Doped Y(2)O(3) NPs According to Yb(3+) Concentration by LP–PLA Method: Potential Further Biosensor

As diagnostic biosensors for analyzing fluids from the human body, the development of inorganic NPs is of increasing concern. For one, nanoceramic phosphors have been studied to meet the increasing requirements for biological, imaging, and diagnostic applications. In this study, Y(2)O(3) NPs co-dope...

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Autores principales: Park, Cheol-Woo, Park, Dong-Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8151213/
https://www.ncbi.nlm.nih.gov/pubmed/34065000
http://dx.doi.org/10.3390/bios11050150
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author Park, Cheol-Woo
Park, Dong-Jun
author_facet Park, Cheol-Woo
Park, Dong-Jun
author_sort Park, Cheol-Woo
collection PubMed
description As diagnostic biosensors for analyzing fluids from the human body, the development of inorganic NPs is of increasing concern. For one, nanoceramic phosphors have been studied to meet the increasing requirements for biological, imaging, and diagnostic applications. In this study, Y(2)O(3) NPs co-doped with trivalent rare earths (erbium and ytterbium) were obtained using a liquid phase–pulsed laser ablation (LP–PLA) method after getting high density Er, Yb:Y(2)O(3) ceramic targets by Spark plasma sintering (SPS). Most NPs are under 50 nm in diameter and show high crystallinity of cubic Y(2)O(3) structure, containing (222), (440), and (332) planes via HR–TEM. Excitation under a 980 nm laser to a nanoparticle solution showed 525 and 565 nm green, and 660 nm red emissions. The green emission intensity increased and decreased with increasing Yb(3+) additive concentration, when the red spectrum continuously strengthened. Utilizing this study’s outcome, we suggest developing technology to mark invisible biomolecules dissolved in a solvent using UC luminescence of Er(3+), Yb(3+) co-doped Y(2)O(3) NPs by LP–PLA. The LP–PLA method has a potential ability for the fabrication of UC NPs for biosensors with uniform size distribution by laser parameters.
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spelling pubmed-81512132021-05-27 Development of Er(3+), Yb(3+) Co-Doped Y(2)O(3) NPs According to Yb(3+) Concentration by LP–PLA Method: Potential Further Biosensor Park, Cheol-Woo Park, Dong-Jun Biosensors (Basel) Article As diagnostic biosensors for analyzing fluids from the human body, the development of inorganic NPs is of increasing concern. For one, nanoceramic phosphors have been studied to meet the increasing requirements for biological, imaging, and diagnostic applications. In this study, Y(2)O(3) NPs co-doped with trivalent rare earths (erbium and ytterbium) were obtained using a liquid phase–pulsed laser ablation (LP–PLA) method after getting high density Er, Yb:Y(2)O(3) ceramic targets by Spark plasma sintering (SPS). Most NPs are under 50 nm in diameter and show high crystallinity of cubic Y(2)O(3) structure, containing (222), (440), and (332) planes via HR–TEM. Excitation under a 980 nm laser to a nanoparticle solution showed 525 and 565 nm green, and 660 nm red emissions. The green emission intensity increased and decreased with increasing Yb(3+) additive concentration, when the red spectrum continuously strengthened. Utilizing this study’s outcome, we suggest developing technology to mark invisible biomolecules dissolved in a solvent using UC luminescence of Er(3+), Yb(3+) co-doped Y(2)O(3) NPs by LP–PLA. The LP–PLA method has a potential ability for the fabrication of UC NPs for biosensors with uniform size distribution by laser parameters. MDPI 2021-05-11 /pmc/articles/PMC8151213/ /pubmed/34065000 http://dx.doi.org/10.3390/bios11050150 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Park, Cheol-Woo
Park, Dong-Jun
Development of Er(3+), Yb(3+) Co-Doped Y(2)O(3) NPs According to Yb(3+) Concentration by LP–PLA Method: Potential Further Biosensor
title Development of Er(3+), Yb(3+) Co-Doped Y(2)O(3) NPs According to Yb(3+) Concentration by LP–PLA Method: Potential Further Biosensor
title_full Development of Er(3+), Yb(3+) Co-Doped Y(2)O(3) NPs According to Yb(3+) Concentration by LP–PLA Method: Potential Further Biosensor
title_fullStr Development of Er(3+), Yb(3+) Co-Doped Y(2)O(3) NPs According to Yb(3+) Concentration by LP–PLA Method: Potential Further Biosensor
title_full_unstemmed Development of Er(3+), Yb(3+) Co-Doped Y(2)O(3) NPs According to Yb(3+) Concentration by LP–PLA Method: Potential Further Biosensor
title_short Development of Er(3+), Yb(3+) Co-Doped Y(2)O(3) NPs According to Yb(3+) Concentration by LP–PLA Method: Potential Further Biosensor
title_sort development of er(3+), yb(3+) co-doped y(2)o(3) nps according to yb(3+) concentration by lp–pla method: potential further biosensor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8151213/
https://www.ncbi.nlm.nih.gov/pubmed/34065000
http://dx.doi.org/10.3390/bios11050150
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