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Size-Tunable and Monodisperse Tm(3+)/Gd(3+)-Doped Hexagonal NaYbF(4) Nanoparticles with Engineered Efficient Near Infrared-to-Near Infrared Upconversion for In Vivo Imaging
[Image: see text] Hexagonal NaYbF(4):Tm(3+) upconversion nanoparticles hold promise for use in high contrast near-infrared-to-near-infrared (NIR-to-NIR) in vitro and in vivo bioimaging. However, significant hurdles remain in their preparation and control of their morphology and size, as well as in e...
Autores principales: | , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American
Chemical Society
2014
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4149327/ https://www.ncbi.nlm.nih.gov/pubmed/25027118 http://dx.doi.org/10.1021/am503288d |
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author | Damasco, Jossana A. Chen, Guanying Shao, Wei Ågren, Hans Huang, Haoyuan Song, Wentao Lovell, Jonathan F. Prasad, Paras N. |
author_facet | Damasco, Jossana A. Chen, Guanying Shao, Wei Ågren, Hans Huang, Haoyuan Song, Wentao Lovell, Jonathan F. Prasad, Paras N. |
author_sort | Damasco, Jossana A. |
collection | PubMed |
description | [Image: see text] Hexagonal NaYbF(4):Tm(3+) upconversion nanoparticles hold promise for use in high contrast near-infrared-to-near-infrared (NIR-to-NIR) in vitro and in vivo bioimaging. However, significant hurdles remain in their preparation and control of their morphology and size, as well as in enhancement of their upconversion efficiency. Here, we describe a systematic approach to produce highly controlled hexagonal NaYbF(4):Tm(3+) nanoparticles with superior upconversion. We found that doping appropriate concentrations of trivalent gadolinium (Gd(3+)) can convert NaYbF(4):Tm(3+) 0.5% nanoparticles with cubic phase and irregular shape into highly monodisperse NaYbF(4):Tm(3+) 0.5% nanoplates or nanospheres in a pure hexagonal-phase and of tunable size. The intensity and the lifetime of the upconverted NIR luminescence at 800 nm exhibit a direct dependence on the size distribution of the resulting nanoparticles, being ascribed to the varied surface-to-volume ratios determined by the different nanoparticle size. Epitaxial growth of a thin NaYF(4) shell layer of ∼2 nm on the ∼22 nm core of hexagonal NaYbF(4):Gd(3+) 30%/Tm(3+) 0.5% nanoparticles resulted in a dramatic 350 fold NIR upconversion efficiency enhancement, because of effective suppression of surface-related quenching mechanisms. In vivo NIR-to-NIR upconversion imaging was demonstrated using a dispersion of phospholipid-polyethylene glycol (DSPE-PEG)-coated core/shell nanoparticles in phosphate buffered saline. |
format | Online Article Text |
id | pubmed-4149327 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | American
Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-41493272015-07-15 Size-Tunable and Monodisperse Tm(3+)/Gd(3+)-Doped Hexagonal NaYbF(4) Nanoparticles with Engineered Efficient Near Infrared-to-Near Infrared Upconversion for In Vivo Imaging Damasco, Jossana A. Chen, Guanying Shao, Wei Ågren, Hans Huang, Haoyuan Song, Wentao Lovell, Jonathan F. Prasad, Paras N. ACS Appl Mater Interfaces [Image: see text] Hexagonal NaYbF(4):Tm(3+) upconversion nanoparticles hold promise for use in high contrast near-infrared-to-near-infrared (NIR-to-NIR) in vitro and in vivo bioimaging. However, significant hurdles remain in their preparation and control of their morphology and size, as well as in enhancement of their upconversion efficiency. Here, we describe a systematic approach to produce highly controlled hexagonal NaYbF(4):Tm(3+) nanoparticles with superior upconversion. We found that doping appropriate concentrations of trivalent gadolinium (Gd(3+)) can convert NaYbF(4):Tm(3+) 0.5% nanoparticles with cubic phase and irregular shape into highly monodisperse NaYbF(4):Tm(3+) 0.5% nanoplates or nanospheres in a pure hexagonal-phase and of tunable size. The intensity and the lifetime of the upconverted NIR luminescence at 800 nm exhibit a direct dependence on the size distribution of the resulting nanoparticles, being ascribed to the varied surface-to-volume ratios determined by the different nanoparticle size. Epitaxial growth of a thin NaYF(4) shell layer of ∼2 nm on the ∼22 nm core of hexagonal NaYbF(4):Gd(3+) 30%/Tm(3+) 0.5% nanoparticles resulted in a dramatic 350 fold NIR upconversion efficiency enhancement, because of effective suppression of surface-related quenching mechanisms. In vivo NIR-to-NIR upconversion imaging was demonstrated using a dispersion of phospholipid-polyethylene glycol (DSPE-PEG)-coated core/shell nanoparticles in phosphate buffered saline. American Chemical Society 2014-07-15 2014-08-27 /pmc/articles/PMC4149327/ /pubmed/25027118 http://dx.doi.org/10.1021/am503288d Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) |
spellingShingle | Damasco, Jossana A. Chen, Guanying Shao, Wei Ågren, Hans Huang, Haoyuan Song, Wentao Lovell, Jonathan F. Prasad, Paras N. Size-Tunable and Monodisperse Tm(3+)/Gd(3+)-Doped Hexagonal NaYbF(4) Nanoparticles with Engineered Efficient Near Infrared-to-Near Infrared Upconversion for In Vivo Imaging |
title | Size-Tunable
and Monodisperse Tm(3+)/Gd(3+)-Doped Hexagonal NaYbF(4) Nanoparticles with Engineered Efficient Near Infrared-to-Near
Infrared Upconversion for In Vivo Imaging |
title_full | Size-Tunable
and Monodisperse Tm(3+)/Gd(3+)-Doped Hexagonal NaYbF(4) Nanoparticles with Engineered Efficient Near Infrared-to-Near
Infrared Upconversion for In Vivo Imaging |
title_fullStr | Size-Tunable
and Monodisperse Tm(3+)/Gd(3+)-Doped Hexagonal NaYbF(4) Nanoparticles with Engineered Efficient Near Infrared-to-Near
Infrared Upconversion for In Vivo Imaging |
title_full_unstemmed | Size-Tunable
and Monodisperse Tm(3+)/Gd(3+)-Doped Hexagonal NaYbF(4) Nanoparticles with Engineered Efficient Near Infrared-to-Near
Infrared Upconversion for In Vivo Imaging |
title_short | Size-Tunable
and Monodisperse Tm(3+)/Gd(3+)-Doped Hexagonal NaYbF(4) Nanoparticles with Engineered Efficient Near Infrared-to-Near
Infrared Upconversion for In Vivo Imaging |
title_sort | size-tunable
and monodisperse tm(3+)/gd(3+)-doped hexagonal naybf(4) nanoparticles with engineered efficient near infrared-to-near
infrared upconversion for in vivo imaging |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4149327/ https://www.ncbi.nlm.nih.gov/pubmed/25027118 http://dx.doi.org/10.1021/am503288d |
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