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Probing the Water Uptake and Phase State of Individual Sucrose Nanoparticles Using Atomic Force Microscopy

[Image: see text] The effects of atmospheric aerosols on the climate and atmosphere of Earth can vary significantly depending upon their properties, including size, morphology, and phase state, all of which are influenced by varying relative humidity (RH) in the atmosphere. A significant fraction of...

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Autores principales: Madawala, Chamika K., Lee, Hansol D., Kaluarachchi, Chathuri P., Tivanski, Alexei V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8543754/
https://www.ncbi.nlm.nih.gov/pubmed/34712889
http://dx.doi.org/10.1021/acsearthspacechem.1c00101
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author Madawala, Chamika K.
Lee, Hansol D.
Kaluarachchi, Chathuri P.
Tivanski, Alexei V.
author_facet Madawala, Chamika K.
Lee, Hansol D.
Kaluarachchi, Chathuri P.
Tivanski, Alexei V.
author_sort Madawala, Chamika K.
collection PubMed
description [Image: see text] The effects of atmospheric aerosols on the climate and atmosphere of Earth can vary significantly depending upon their properties, including size, morphology, and phase state, all of which are influenced by varying relative humidity (RH) in the atmosphere. A significant fraction of atmospheric aerosols is below 100 nm in size. However, as a result of size limitations of conventional experimental techniques, how the particle-to-particle variability of the phase state of aerosols influences atmospheric processes is poorly understood. To address this issue, the atomic force microscopy (AFM) methodology that was previously established for sub-micrometer aerosols is extended to measure the water uptake and identify the phase state of individual sucrose nanoparticles. Quantified growth factors (GFs) of individual sucrose nanoparticles up to 60% RH were lower than expected values observed on the sub-micrometer sucrose particles. The effect could be attributed to the semisolid sucrose nanoparticle restructuring on a substrate. At RH > 60%, sucrose nanoparticles are liquid and GFs overlap well with the sub-micrometer particles and theoretical predictions. This suggests that quantification of GFs of nanoparticles may be inaccurate for the RH range where particles are semisolid but becomes accurate at elevated RH where particles are liquid. Despite this, however, the identified phase states of the nanoparticles were comparable to their sub-micrometer counterparts. The identified phase transitions between solid and semisolid and between semisolid and liquid for sucrose were at ∼18 and 60% RH, which are equivalent to viscosities of 10(11.2) and 10(2.5) Pa s, respectively. This work demonstrates that measurements of the phase state using AFM are applicable to nanosized particles, even when the substrate alters the shape of semisolid nanoparticles and alters the GF.
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spelling pubmed-85437542021-10-26 Probing the Water Uptake and Phase State of Individual Sucrose Nanoparticles Using Atomic Force Microscopy Madawala, Chamika K. Lee, Hansol D. Kaluarachchi, Chathuri P. Tivanski, Alexei V. ACS Earth Space Chem [Image: see text] The effects of atmospheric aerosols on the climate and atmosphere of Earth can vary significantly depending upon their properties, including size, morphology, and phase state, all of which are influenced by varying relative humidity (RH) in the atmosphere. A significant fraction of atmospheric aerosols is below 100 nm in size. However, as a result of size limitations of conventional experimental techniques, how the particle-to-particle variability of the phase state of aerosols influences atmospheric processes is poorly understood. To address this issue, the atomic force microscopy (AFM) methodology that was previously established for sub-micrometer aerosols is extended to measure the water uptake and identify the phase state of individual sucrose nanoparticles. Quantified growth factors (GFs) of individual sucrose nanoparticles up to 60% RH were lower than expected values observed on the sub-micrometer sucrose particles. The effect could be attributed to the semisolid sucrose nanoparticle restructuring on a substrate. At RH > 60%, sucrose nanoparticles are liquid and GFs overlap well with the sub-micrometer particles and theoretical predictions. This suggests that quantification of GFs of nanoparticles may be inaccurate for the RH range where particles are semisolid but becomes accurate at elevated RH where particles are liquid. Despite this, however, the identified phase states of the nanoparticles were comparable to their sub-micrometer counterparts. The identified phase transitions between solid and semisolid and between semisolid and liquid for sucrose were at ∼18 and 60% RH, which are equivalent to viscosities of 10(11.2) and 10(2.5) Pa s, respectively. This work demonstrates that measurements of the phase state using AFM are applicable to nanosized particles, even when the substrate alters the shape of semisolid nanoparticles and alters the GF. American Chemical Society 2021-09-10 2021-10-21 /pmc/articles/PMC8543754/ /pubmed/34712889 http://dx.doi.org/10.1021/acsearthspacechem.1c00101 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Madawala, Chamika K.
Lee, Hansol D.
Kaluarachchi, Chathuri P.
Tivanski, Alexei V.
Probing the Water Uptake and Phase State of Individual Sucrose Nanoparticles Using Atomic Force Microscopy
title Probing the Water Uptake and Phase State of Individual Sucrose Nanoparticles Using Atomic Force Microscopy
title_full Probing the Water Uptake and Phase State of Individual Sucrose Nanoparticles Using Atomic Force Microscopy
title_fullStr Probing the Water Uptake and Phase State of Individual Sucrose Nanoparticles Using Atomic Force Microscopy
title_full_unstemmed Probing the Water Uptake and Phase State of Individual Sucrose Nanoparticles Using Atomic Force Microscopy
title_short Probing the Water Uptake and Phase State of Individual Sucrose Nanoparticles Using Atomic Force Microscopy
title_sort probing the water uptake and phase state of individual sucrose nanoparticles using atomic force microscopy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8543754/
https://www.ncbi.nlm.nih.gov/pubmed/34712889
http://dx.doi.org/10.1021/acsearthspacechem.1c00101
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