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Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6

Magnetite nanoparticles’ applicability is growing extensively. However, simple, environmentally-friendly, tunable synthesis of monodispersed iron-oxide nanoparticles is challenging. Continuous flow microfluidic synthesis is promising; however, the microscale results in small yields and clogging. Her...

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Autores principales: Norfolk, Laura, Rawlings, Andrea E, Bramble, Jonathan P, Ward, Katy, Francis, Noel, Waller, Rachel, Bailey, Ashley, Staniland, Sarah S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6955933/
https://www.ncbi.nlm.nih.gov/pubmed/31817082
http://dx.doi.org/10.3390/nano9121729
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author Norfolk, Laura
Rawlings, Andrea E
Bramble, Jonathan P
Ward, Katy
Francis, Noel
Waller, Rachel
Bailey, Ashley
Staniland, Sarah S.
author_facet Norfolk, Laura
Rawlings, Andrea E
Bramble, Jonathan P
Ward, Katy
Francis, Noel
Waller, Rachel
Bailey, Ashley
Staniland, Sarah S.
author_sort Norfolk, Laura
collection PubMed
description Magnetite nanoparticles’ applicability is growing extensively. However, simple, environmentally-friendly, tunable synthesis of monodispersed iron-oxide nanoparticles is challenging. Continuous flow microfluidic synthesis is promising; however, the microscale results in small yields and clogging. Here we present two simple macrofluidics devices (cast and machined) for precision magnetite nanoparticle synthesis utilizing formation at the interface by diffusion between two laminar flows, removing aforementioned issues. Ferric to total iron was varied between 0.2 (20:80 Fe(3+):Fe(2+)) and 0.7 (70:30 Fe(3+):Fe(2+)). X-ray diffraction shows magnetite in fractions from 0.2–0.6, with iron-oxide impurities in 0.7, 0.2 and 0.3 samples and magnetic susceptibility increases with increasing ferric content to 0.6, in agreement with each other and batch synthesis. Remarkably, size is tuned (between 20.5 nm to 6.5 nm) simply by increasing ferric ions ratio. Previous research shows biomineralisation protein Mms6 directs magnetite synthesis and controls size, but until now has not been attempted in flow. Here we report Mms6 increases magnetism, but no difference in particle size is seen, showing flow reduced the influence of Mms6. The study demonstrates a versatile yet simple platform for the synthesis of a vast range of tunable nanoparticles and ideal to study reaction intermediates and additive effects throughout synthesis.
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spelling pubmed-69559332020-01-23 Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6 Norfolk, Laura Rawlings, Andrea E Bramble, Jonathan P Ward, Katy Francis, Noel Waller, Rachel Bailey, Ashley Staniland, Sarah S. Nanomaterials (Basel) Article Magnetite nanoparticles’ applicability is growing extensively. However, simple, environmentally-friendly, tunable synthesis of monodispersed iron-oxide nanoparticles is challenging. Continuous flow microfluidic synthesis is promising; however, the microscale results in small yields and clogging. Here we present two simple macrofluidics devices (cast and machined) for precision magnetite nanoparticle synthesis utilizing formation at the interface by diffusion between two laminar flows, removing aforementioned issues. Ferric to total iron was varied between 0.2 (20:80 Fe(3+):Fe(2+)) and 0.7 (70:30 Fe(3+):Fe(2+)). X-ray diffraction shows magnetite in fractions from 0.2–0.6, with iron-oxide impurities in 0.7, 0.2 and 0.3 samples and magnetic susceptibility increases with increasing ferric content to 0.6, in agreement with each other and batch synthesis. Remarkably, size is tuned (between 20.5 nm to 6.5 nm) simply by increasing ferric ions ratio. Previous research shows biomineralisation protein Mms6 directs magnetite synthesis and controls size, but until now has not been attempted in flow. Here we report Mms6 increases magnetism, but no difference in particle size is seen, showing flow reduced the influence of Mms6. The study demonstrates a versatile yet simple platform for the synthesis of a vast range of tunable nanoparticles and ideal to study reaction intermediates and additive effects throughout synthesis. MDPI 2019-12-04 /pmc/articles/PMC6955933/ /pubmed/31817082 http://dx.doi.org/10.3390/nano9121729 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Norfolk, Laura
Rawlings, Andrea E
Bramble, Jonathan P
Ward, Katy
Francis, Noel
Waller, Rachel
Bailey, Ashley
Staniland, Sarah S.
Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6
title Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6
title_full Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6
title_fullStr Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6
title_full_unstemmed Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6
title_short Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6
title_sort macrofluidic coaxial flow platforms to produce tunable magnetite nanoparticles: a study of the effect of reaction conditions and biomineralisation protein mms6
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6955933/
https://www.ncbi.nlm.nih.gov/pubmed/31817082
http://dx.doi.org/10.3390/nano9121729
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