Degradability of cross-linked polyurethanes based on synthetic polyhydroxybutyrate and modified with polylactide

被引:0
作者
Joanna Brzeska
Magda Morawska
Wanda Sikorska
Agnieszka Tercjak
Marek Kowalczuk
Maria Rutkowska
机构
[1] Gdynia Maritime University,Department of Commodity Industrial Science and Chemistry
[2] Polish Academy of Sciences,Centre of Polymer and Carbon Materials
[3] University of the Basque Country (UPV/EHU),Group ‘Materials+Technologies’ (GMT), Department of Chemical and Environmental Engineering
[4] University of Wolverhampton,School of Biology, Chemistry and Forensic Science, Faculty of Science and Engineering
来源
Chemical Papers | 2017年 / 71卷
关键词
Degradable polymers; Cross-linked polyurethanes; Synthetic polyhydroxybutyrate; Polymer blends; Polylactide;
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中图分类号
学科分类号
摘要
In many areas of application of conventional non-degradable cross-linked polyurethanes (PUR), there is a need for their degradation under the influence of specific environmental factors. It is practiced by incorporation of sensitive to degradation compounds (usually of natural origin) into the polyurethane structure, or by mixing them with polyurethanes. Cross-linked polyurethanes (with 10 and 30%wt amount of synthetic poly([R,S]-3-hydroxybutyrate) (R,S-PHB) in soft segments) and their physical blends with poly([d,l]-lactide) (PDLLA) were investigated and then degraded under hydrolytic (phosphate buffer solution) and oxidative (CoCl2/H2O2) conditions. The rate of degradation was monitored by changes of samples mass, morphology of surface and their thermal properties. Despite the small weight losses of samples, the changes of thermal properties of polymers and topography of their surface indicated that they were susceptible to gradual degradation under oxidative and hydrolytic conditions. Blends of PDLLA and polyurethane with 30 wt% of R,S-PHB in soft segments and PUR/PDLLA blends absorbed more water and degraded faster than polyurethane with low amount of R,S-PHB.
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页码:2243 / 2251
页数:8
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