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The Preparation and Properties of Nanocomposite from Bio-Based Polyurethane and Graphene Oxide for Gas Separation

Petroleum depletion and climate change have inspired research on bio-based polymers and CO(2) capture. Tung-oil-based polyols were applied to partially replace polyether-type polyols from petroleum for sustainable polyurethane. Tung-oil-based polyurethane (TBPU), was prepared via a two-step polycond...

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Autores principales: Zhang, Yongsheng, Ma, Jun, Bai, Yao, Wen, Youwei, Zhao, Na, Zhang, Xiaoling, Zhang, Yatao, Li, Qian, Wei, Liuhe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6358816/
https://www.ncbi.nlm.nih.gov/pubmed/30583582
http://dx.doi.org/10.3390/nano9010015
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author Zhang, Yongsheng
Ma, Jun
Bai, Yao
Wen, Youwei
Zhao, Na
Zhang, Xiaoling
Zhang, Yatao
Li, Qian
Wei, Liuhe
author_facet Zhang, Yongsheng
Ma, Jun
Bai, Yao
Wen, Youwei
Zhao, Na
Zhang, Xiaoling
Zhang, Yatao
Li, Qian
Wei, Liuhe
author_sort Zhang, Yongsheng
collection PubMed
description Petroleum depletion and climate change have inspired research on bio-based polymers and CO(2) capture. Tung-oil-based polyols were applied to partially replace polyether-type polyols from petroleum for sustainable polyurethane. Tung-oil-based polyurethane (TBPU), was prepared via a two-step polycondensation, that is, bulk prepolymerization and chain extension reaction. The graphene oxide (GO) was prepared via Hummer’s method. Then, TBPU was composited with the GO at different ratios to form a TBPU/GO hybrid film. The GO/TBPU films were characterized by fourier transform infrared spectroscopy (FTIR), differential scanning calorimeter (DSC), thermal gravimetric analysis (TGA) and scanning electron microscope (SEM), followed by the measurement of mechanical properties and gas permeability. The results showed that the addition of tung-oil-based polyols enhanced the glass transition temperature and thermal stability of TBPU. The mechanical properties of the hybrid film were significantly improved, and the tensile strength and elongation at break were twice as high as those of the bulk TBPU film. When the GO content was higher than 2.0%, a brittle fracture appeared in the cross section of hybrid film. The increase of GO content in hybrid films improved the selectivity of CO(2)/N(2) separation. When the GO content was higher than 0.35%, the resulting GO agglomeration constrained the gas separation and permeation properties.
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spelling pubmed-63588162019-02-06 The Preparation and Properties of Nanocomposite from Bio-Based Polyurethane and Graphene Oxide for Gas Separation Zhang, Yongsheng Ma, Jun Bai, Yao Wen, Youwei Zhao, Na Zhang, Xiaoling Zhang, Yatao Li, Qian Wei, Liuhe Nanomaterials (Basel) Article Petroleum depletion and climate change have inspired research on bio-based polymers and CO(2) capture. Tung-oil-based polyols were applied to partially replace polyether-type polyols from petroleum for sustainable polyurethane. Tung-oil-based polyurethane (TBPU), was prepared via a two-step polycondensation, that is, bulk prepolymerization and chain extension reaction. The graphene oxide (GO) was prepared via Hummer’s method. Then, TBPU was composited with the GO at different ratios to form a TBPU/GO hybrid film. The GO/TBPU films were characterized by fourier transform infrared spectroscopy (FTIR), differential scanning calorimeter (DSC), thermal gravimetric analysis (TGA) and scanning electron microscope (SEM), followed by the measurement of mechanical properties and gas permeability. The results showed that the addition of tung-oil-based polyols enhanced the glass transition temperature and thermal stability of TBPU. The mechanical properties of the hybrid film were significantly improved, and the tensile strength and elongation at break were twice as high as those of the bulk TBPU film. When the GO content was higher than 2.0%, a brittle fracture appeared in the cross section of hybrid film. The increase of GO content in hybrid films improved the selectivity of CO(2)/N(2) separation. When the GO content was higher than 0.35%, the resulting GO agglomeration constrained the gas separation and permeation properties. MDPI 2018-12-23 /pmc/articles/PMC6358816/ /pubmed/30583582 http://dx.doi.org/10.3390/nano9010015 Text en © 2018 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
Zhang, Yongsheng
Ma, Jun
Bai, Yao
Wen, Youwei
Zhao, Na
Zhang, Xiaoling
Zhang, Yatao
Li, Qian
Wei, Liuhe
The Preparation and Properties of Nanocomposite from Bio-Based Polyurethane and Graphene Oxide for Gas Separation
title The Preparation and Properties of Nanocomposite from Bio-Based Polyurethane and Graphene Oxide for Gas Separation
title_full The Preparation and Properties of Nanocomposite from Bio-Based Polyurethane and Graphene Oxide for Gas Separation
title_fullStr The Preparation and Properties of Nanocomposite from Bio-Based Polyurethane and Graphene Oxide for Gas Separation
title_full_unstemmed The Preparation and Properties of Nanocomposite from Bio-Based Polyurethane and Graphene Oxide for Gas Separation
title_short The Preparation and Properties of Nanocomposite from Bio-Based Polyurethane and Graphene Oxide for Gas Separation
title_sort preparation and properties of nanocomposite from bio-based polyurethane and graphene oxide for gas separation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6358816/
https://www.ncbi.nlm.nih.gov/pubmed/30583582
http://dx.doi.org/10.3390/nano9010015
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