Sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersion

The application of bio-based materials is becoming impellent owing to the increasing demand for alternatives to petroleum-based analogs. In this regard, cellulose nanocrystals (CNCs) with unique properties have received a significant interest, while their hydrophilic character poses a challenge to t...

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Main Authors: Jamileh Shojaeiarani, Dilpreet Bajwa, Greg Holt
Format: Article
Language:English
Published: Taylor & Francis Group 2020-01-01
Series:Nanocomposites
Subjects:
Online Access:http://dx.doi.org/10.1080/20550324.2019.1710974
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spelling doaj-2e3f3378046c4fc493a0a10e5c16f0022020-11-25T03:47:18ZengTaylor & Francis GroupNanocomposites2055-03322020-01-0161414610.1080/20550324.2019.17109741710974Sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersionJamileh Shojaeiarani0Dilpreet Bajwa1Greg Holt2Western New England UniversityMontana State UniversityUSDA-ARSThe application of bio-based materials is becoming impellent owing to the increasing demand for alternatives to petroleum-based analogs. In this regard, cellulose nanocrystals (CNCs) with unique properties have received a significant interest, while their hydrophilic character poses a challenge to their commercial applications. Ultrasonication treatment is one of the most commonly used methods to improve CNCs’ dispersion in different solvents and polymer matrices. In this work, the effectiveness of ultrasonication treatment in the dispersion of CNCs in a water-soluble polymer (polyvinyl alcohol, PVA) was studied. An aqueous suspension of polyvinyl alcohol and CNCs was prepared using different ultrasonication times and amplitudes. The morphology, particle size and dispersion of CNCs were studied using X-ray diffraction, transmission electron microscopy, and dynamic light scattering. The results indicated that with increase in the sonication amplitude, there was a substantial decrease in nanoparticle length, while long sonication times gently affected the nanoparticle length. Furthermore, improved dispersion was observed in samples prepared using longer sonication time.http://dx.doi.org/10.1080/20550324.2019.1710974sonication amplitudesonication timecellulose nanocrystalsdispersionparticle size
collection DOAJ
language English
format Article
sources DOAJ
author Jamileh Shojaeiarani
Dilpreet Bajwa
Greg Holt
spellingShingle Jamileh Shojaeiarani
Dilpreet Bajwa
Greg Holt
Sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersion
Nanocomposites
sonication amplitude
sonication time
cellulose nanocrystals
dispersion
particle size
author_facet Jamileh Shojaeiarani
Dilpreet Bajwa
Greg Holt
author_sort Jamileh Shojaeiarani
title Sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersion
title_short Sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersion
title_full Sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersion
title_fullStr Sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersion
title_full_unstemmed Sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersion
title_sort sonication amplitude and processing time influence the cellulose nanocrystals morphology and dispersion
publisher Taylor & Francis Group
series Nanocomposites
issn 2055-0332
publishDate 2020-01-01
description The application of bio-based materials is becoming impellent owing to the increasing demand for alternatives to petroleum-based analogs. In this regard, cellulose nanocrystals (CNCs) with unique properties have received a significant interest, while their hydrophilic character poses a challenge to their commercial applications. Ultrasonication treatment is one of the most commonly used methods to improve CNCs’ dispersion in different solvents and polymer matrices. In this work, the effectiveness of ultrasonication treatment in the dispersion of CNCs in a water-soluble polymer (polyvinyl alcohol, PVA) was studied. An aqueous suspension of polyvinyl alcohol and CNCs was prepared using different ultrasonication times and amplitudes. The morphology, particle size and dispersion of CNCs were studied using X-ray diffraction, transmission electron microscopy, and dynamic light scattering. The results indicated that with increase in the sonication amplitude, there was a substantial decrease in nanoparticle length, while long sonication times gently affected the nanoparticle length. Furthermore, improved dispersion was observed in samples prepared using longer sonication time.
topic sonication amplitude
sonication time
cellulose nanocrystals
dispersion
particle size
url http://dx.doi.org/10.1080/20550324.2019.1710974
work_keys_str_mv AT jamilehshojaeiarani sonicationamplitudeandprocessingtimeinfluencethecellulosenanocrystalsmorphologyanddispersion
AT dilpreetbajwa sonicationamplitudeandprocessingtimeinfluencethecellulosenanocrystalsmorphologyanddispersion
AT gregholt sonicationamplitudeandprocessingtimeinfluencethecellulosenanocrystalsmorphologyanddispersion
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