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Development of an Fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine

The ferrozine (FZ) assay is a vital oxidation state-specific colorimetric assay for the quantification of Fe(2+) ions in environmental samples due to its sharp increase in absorbance at 562 nm upon addition of Fe(2+). However, it has yet to be applied to corresponding fluoresence assays which typica...

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Autores principales: Abramson, Ruth, Wilson, Hannah, Natile, Marta M., Natrajan, Louise 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/PMC10475975/
https://www.ncbi.nlm.nih.gov/pubmed/37671000
http://dx.doi.org/10.1039/d3ra04645a
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author Abramson, Ruth
Wilson, Hannah
Natile, Marta M.
Natrajan, Louise S.
author_facet Abramson, Ruth
Wilson, Hannah
Natile, Marta M.
Natrajan, Louise S.
author_sort Abramson, Ruth
collection PubMed
description The ferrozine (FZ) assay is a vital oxidation state-specific colorimetric assay for the quantification of Fe(2+) ions in environmental samples due to its sharp increase in absorbance at 562 nm upon addition of Fe(2+). However, it has yet to be applied to corresponding fluoresence assays which typically offer higher sensitivites and lower detection limits. In this article we present for the first time its pairing with upconverting luminescent nanomaterials to enable detection of Fe(2+)via the inner filter effect using a low-power continuous wave diode laser (45 mW). Upon near infra-red excitation at 980 nm, the overlap of the upconversion emission of Er(3+) at approximately 545 nm and the absorbance of the FZ:Fe(2+) complex at 562 nm enabled measurement in the change of UCNP emission response as a function of Fe(2+) concentration in a ratiometric manner. We first applied large, ultra-bright poly(acrylic acid) (PAA)-capped Gd(2)O(2)S:Yb(3+),Er(3+) UCNPs upconverting nanoparticles (UCNPs) for the detection of Fe(2+) using FZ as the acceptor. The probe displayed good selectivity and sensitivity for Fe(2+), with a low limit of detection (LoD) of 2.74 μM. Analogous results employing smaller (31 nm) PAA-capped hexagonal-phase NaYF(4):Yb(3+),Er(3+) UCNPs synthesised in our lab were achieved, with a lower LoD towards Fe(2+) of 1.43 μM. These results illustrate how the ratiometric nature of the system means it is applicable over a range of particle sizes, brightnesses and nanoparticle host matrices. Preliminary investigations also found the probes capable of detecting micromolar concentrations of Fe(2+) in turbid solutions.
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spelling pubmed-104759752023-09-05 Development of an Fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine Abramson, Ruth Wilson, Hannah Natile, Marta M. Natrajan, Louise S. RSC Adv Chemistry The ferrozine (FZ) assay is a vital oxidation state-specific colorimetric assay for the quantification of Fe(2+) ions in environmental samples due to its sharp increase in absorbance at 562 nm upon addition of Fe(2+). However, it has yet to be applied to corresponding fluoresence assays which typically offer higher sensitivites and lower detection limits. In this article we present for the first time its pairing with upconverting luminescent nanomaterials to enable detection of Fe(2+)via the inner filter effect using a low-power continuous wave diode laser (45 mW). Upon near infra-red excitation at 980 nm, the overlap of the upconversion emission of Er(3+) at approximately 545 nm and the absorbance of the FZ:Fe(2+) complex at 562 nm enabled measurement in the change of UCNP emission response as a function of Fe(2+) concentration in a ratiometric manner. We first applied large, ultra-bright poly(acrylic acid) (PAA)-capped Gd(2)O(2)S:Yb(3+),Er(3+) UCNPs upconverting nanoparticles (UCNPs) for the detection of Fe(2+) using FZ as the acceptor. The probe displayed good selectivity and sensitivity for Fe(2+), with a low limit of detection (LoD) of 2.74 μM. Analogous results employing smaller (31 nm) PAA-capped hexagonal-phase NaYF(4):Yb(3+),Er(3+) UCNPs synthesised in our lab were achieved, with a lower LoD towards Fe(2+) of 1.43 μM. These results illustrate how the ratiometric nature of the system means it is applicable over a range of particle sizes, brightnesses and nanoparticle host matrices. Preliminary investigations also found the probes capable of detecting micromolar concentrations of Fe(2+) in turbid solutions. The Royal Society of Chemistry 2023-09-04 /pmc/articles/PMC10475975/ /pubmed/37671000 http://dx.doi.org/10.1039/d3ra04645a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Abramson, Ruth
Wilson, Hannah
Natile, Marta M.
Natrajan, Louise S.
Development of an Fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine
title Development of an Fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine
title_full Development of an Fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine
title_fullStr Development of an Fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine
title_full_unstemmed Development of an Fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine
title_short Development of an Fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine
title_sort development of an fe(2+) sensing system based on the inner filter effect between upconverting nanoparticles and ferrozine
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10475975/
https://www.ncbi.nlm.nih.gov/pubmed/37671000
http://dx.doi.org/10.1039/d3ra04645a
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