Can attenuated total internal reflection-Fourier transform infrared be used to understand the interaction between polymers and water? A hyperspectral imaging study

This study investigates the potential use of attenuated total internal reflection-Fourier transform infrared (ATR-FT-IR) imaging, a hyperspectral imaging modality, to investigate molecular level trends in the interaction of water with polymeric surfaces of varying hydrophobicity. The hydrophobicity...

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Main Authors: S. Mukherjee, J. A. Martínez-González, C. P. Stallard, D.P. Dowling, A. A. Gowen
Format: Article
Language:English
Published: IM Publications Open 2017-04-01
Series:Journal of Spectral Imaging
Subjects:
Online Access:https://www.impublications.com/download.php?code=I06_a3
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spelling doaj-c5dfa1f2a80a4b7bb3176b115fe391df2020-11-24T21:37:53ZengIM Publications OpenJournal of Spectral Imaging2040-45652040-45652017-04-016a310.1255/jsi.2017.a3Can attenuated total internal reflection-Fourier transform infrared be used to understand the interaction between polymers and water? A hyperspectral imaging studyS. Mukherjee0J. A. Martínez-González1C. P. Stallard2D.P. Dowling3A. A. Gowen4School of Biosystems and Food Engineering, University College Dublin, Belfield, Dublin 4, IrelandSchool of Biosystems and Food Engineering, University College Dublin, Belfield, Dublin 4, IrelandSchool of Electrical, Electronic and Mechanical Engineering, University College Dublin, Belfield, Dublin 4, IrelandSchool of Electrical, Electronic and Mechanical Engineering, University College Dublin, Belfield, Dublin 4, IrelandSchool of Biosystems and Food Engineering, University College Dublin, Belfield, Dublin 4, IrelandThis study investigates the potential use of attenuated total internal reflection-Fourier transform infrared (ATR-FT-IR) imaging, a hyperspectral imaging modality, to investigate molecular level trends in the interaction of water with polymeric surfaces of varying hydrophobicity. The hydrophobicity of two categories of polymeric biomaterials is characterised using contact angle (CA) measurements and their relationship with the band area of the OH stretching <*I*>vs<*I*> vibration of water over time is presented. This is supported with correlations between CA data and single wavenumber intensity values (univariate analysis). Multivariate analysis of the spectra captured at the OH stretch for all polymers is carried out using principal component analysis to study the spatial variation in the interaction between the polymeric surfaces and water. Finally, a comparison between the univariate and multivariate strategies is presented to understand the interaction between polymeric biomaterials and water. This is a corrected version of the original paper; this corrected version was published on 15 May 2017. Please see Erratum at https://doi.org/10.1255/jsi.2017.a3e.https://www.impublications.com/download.php?code=I06_a3ATR-FT-IRpolymerHMDSOhydrophobicitysiliconwaterhyperspectral imagingwetting
collection DOAJ
language English
format Article
sources DOAJ
author S. Mukherjee
J. A. Martínez-González
C. P. Stallard
D.P. Dowling
A. A. Gowen
spellingShingle S. Mukherjee
J. A. Martínez-González
C. P. Stallard
D.P. Dowling
A. A. Gowen
Can attenuated total internal reflection-Fourier transform infrared be used to understand the interaction between polymers and water? A hyperspectral imaging study
Journal of Spectral Imaging
ATR-FT-IR
polymer
HMDSO
hydrophobicity
silicon
water
hyperspectral imaging
wetting
author_facet S. Mukherjee
J. A. Martínez-González
C. P. Stallard
D.P. Dowling
A. A. Gowen
author_sort S. Mukherjee
title Can attenuated total internal reflection-Fourier transform infrared be used to understand the interaction between polymers and water? A hyperspectral imaging study
title_short Can attenuated total internal reflection-Fourier transform infrared be used to understand the interaction between polymers and water? A hyperspectral imaging study
title_full Can attenuated total internal reflection-Fourier transform infrared be used to understand the interaction between polymers and water? A hyperspectral imaging study
title_fullStr Can attenuated total internal reflection-Fourier transform infrared be used to understand the interaction between polymers and water? A hyperspectral imaging study
title_full_unstemmed Can attenuated total internal reflection-Fourier transform infrared be used to understand the interaction between polymers and water? A hyperspectral imaging study
title_sort can attenuated total internal reflection-fourier transform infrared be used to understand the interaction between polymers and water? a hyperspectral imaging study
publisher IM Publications Open
series Journal of Spectral Imaging
issn 2040-4565
2040-4565
publishDate 2017-04-01
description This study investigates the potential use of attenuated total internal reflection-Fourier transform infrared (ATR-FT-IR) imaging, a hyperspectral imaging modality, to investigate molecular level trends in the interaction of water with polymeric surfaces of varying hydrophobicity. The hydrophobicity of two categories of polymeric biomaterials is characterised using contact angle (CA) measurements and their relationship with the band area of the OH stretching <*I*>vs<*I*> vibration of water over time is presented. This is supported with correlations between CA data and single wavenumber intensity values (univariate analysis). Multivariate analysis of the spectra captured at the OH stretch for all polymers is carried out using principal component analysis to study the spatial variation in the interaction between the polymeric surfaces and water. Finally, a comparison between the univariate and multivariate strategies is presented to understand the interaction between polymeric biomaterials and water. This is a corrected version of the original paper; this corrected version was published on 15 May 2017. Please see Erratum at https://doi.org/10.1255/jsi.2017.a3e.
topic ATR-FT-IR
polymer
HMDSO
hydrophobicity
silicon
water
hyperspectral imaging
wetting
url https://www.impublications.com/download.php?code=I06_a3
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