Preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers

碩士 === 國立臺灣大學 === 高分子科學與工程學研究所 === 104 === Thermally induced shape memory is an attractive feature of certain functional materials. Among the shape memory polymers, shape memory elastomers (SMEs) especially those with biodegradability have great potential in the biomedical field. In this study, we p...

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Main Authors: Yu-Chun Chien, 簡毓均
Other Authors: 徐善慧
Format: Others
Language:zh-TW
Published: 2016
Online Access:http://ndltd.ncl.edu.tw/handle/06522440115333688589
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spelling ndltd-TW-104NTU053100232016-10-30T04:17:02Z http://ndltd.ncl.edu.tw/handle/06522440115333688589 Preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers 生物可降解聚胺酯形狀記憶彈性體之性質分析與機制 Yu-Chun Chien 簡毓均 碩士 國立臺灣大學 高分子科學與工程學研究所 104 Thermally induced shape memory is an attractive feature of certain functional materials. Among the shape memory polymers, shape memory elastomers (SMEs) especially those with biodegradability have great potential in the biomedical field. In this study, we prepared waterborne biodegradable polyurethane SME based on poly(-caprolactone) (PCL) oligodiol and poly(L-lactic acid) (PLLA) oligodiol as the mixed soft segments. The ratio of the soft segments in polyurethanes was optimized for shape memory behavior. The thermally induced shape memory mechanism of the series of polyurethanes was clarified using differential scanning calorimeter (DSC), X-ray diffraction (XRD), and small angle X-ray scattering (SAXS). In particular, the in situ SAXS measurements combined with shape deformation processes were employed to examine the stretch-induced (oriented) crystalline structure of the polyurethanes and to elucidate the unique mechanism for shape memory properties. The polyurethane with optimized PLLA crystalline segments showed a diamond-shape two-dimensional SAXS pattern after being stretched, which gave rise to better shape fixing and shape recovery. The shape memory behavior was further tested in 37°C water. The biodegradable polyurethane comprising 38 wt% PCL segments and 25 wt% PLLA segments and synthesized at a relatively lower temperature by the waterborne procedure showed ~100% shape recovery in 37°C water. The biodegradable polyurethane SME also demonstrated good endothelial cell viability as well as low platelet adhesion/activation. We conclude that the waterborne biodegradable polyurethane SME possesses a unique thermally induced shape memory mechanism and may have potential applications in making shape memory biodegradable stents or scaffolds. 徐善慧 2016 學位論文 ; thesis 71 zh-TW
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description 碩士 === 國立臺灣大學 === 高分子科學與工程學研究所 === 104 === Thermally induced shape memory is an attractive feature of certain functional materials. Among the shape memory polymers, shape memory elastomers (SMEs) especially those with biodegradability have great potential in the biomedical field. In this study, we prepared waterborne biodegradable polyurethane SME based on poly(-caprolactone) (PCL) oligodiol and poly(L-lactic acid) (PLLA) oligodiol as the mixed soft segments. The ratio of the soft segments in polyurethanes was optimized for shape memory behavior. The thermally induced shape memory mechanism of the series of polyurethanes was clarified using differential scanning calorimeter (DSC), X-ray diffraction (XRD), and small angle X-ray scattering (SAXS). In particular, the in situ SAXS measurements combined with shape deformation processes were employed to examine the stretch-induced (oriented) crystalline structure of the polyurethanes and to elucidate the unique mechanism for shape memory properties. The polyurethane with optimized PLLA crystalline segments showed a diamond-shape two-dimensional SAXS pattern after being stretched, which gave rise to better shape fixing and shape recovery. The shape memory behavior was further tested in 37°C water. The biodegradable polyurethane comprising 38 wt% PCL segments and 25 wt% PLLA segments and synthesized at a relatively lower temperature by the waterborne procedure showed ~100% shape recovery in 37°C water. The biodegradable polyurethane SME also demonstrated good endothelial cell viability as well as low platelet adhesion/activation. We conclude that the waterborne biodegradable polyurethane SME possesses a unique thermally induced shape memory mechanism and may have potential applications in making shape memory biodegradable stents or scaffolds.
author2 徐善慧
author_facet 徐善慧
Yu-Chun Chien
簡毓均
author Yu-Chun Chien
簡毓均
spellingShingle Yu-Chun Chien
簡毓均
Preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers
author_sort Yu-Chun Chien
title Preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers
title_short Preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers
title_full Preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers
title_fullStr Preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers
title_full_unstemmed Preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers
title_sort preparation, characterization, and mechanism for biodegradable and biocompatible polyurethane shape memory elastomers
publishDate 2016
url http://ndltd.ncl.edu.tw/handle/06522440115333688589
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