Gajdosova Veronika, Strachota Beata, Strachota Adam, Michalkova Danuse, Krejcikova Sabina, Fulin Petr, Nyc Otakar, Brinek Adam, Zemek Marek, Slouf Miroslav
Institute of Macromolecular Chemistry of the Czech Academy of Sciences, Heyrovsky Sq. 2, Prague 6, 162 06 Prague, Czech Republic.
1st Orthopedic Clinic, 1st Faculty of Medicine, Charles University, Motol University Hospital, V Uvalu 84, Prague 5, 150 06 Prague, Czech Republic.
Materials (Basel). 2022 Jan 30;15(3):1101. doi: 10.3390/ma15031101.
We report a reproducible preparation and characterization of highly homogeneous thermoplastic starch/pol(ε-caprolactone) blends (TPS/PCL) with a minimal thermomechanical degradation and co-continuous morphology. These materials would be suitable for biomedical applications, specifically for the local release of antibiotics (ATB) from the TPS phase. The TPS/PCL blends were prepared in the whole concentration range. In agreement with theoretical predictions based on component viscosities, the co-continuous morphology was found for TPS/PCL blends with a composition of 70/30 wt.%. The minimal thermomechanical degradation of the blends was achieved by an optimization of the processing conditions and by keeping processing temperatures as low as possible, because higher temperatures might damage ATB in the final application. The blends' homogeneity was verified by scanning electron microscopy. The co-continuous morphology was confirmed by submicron-computed tomography. The mechanical performance of the blends was characterized in both microscale (by an instrumented microindentation hardness testing; MHI) and macroscale (by dynamic thermomechanical analysis; DMTA). The elastic moduli of TPS increased ca four times in the TPS/PCL (70/30) blend. The correlations between elastic moduli measured by MHI and DMTA were very strong, which implied that, in the future studies, it would be possible to use just micromechanical testing that does not require large specimens.
我们报告了一种可重现的制备方法,该方法制备出了具有高度均一性、热机械降解程度最低且具有双连续形态的热塑性淀粉/聚(ε-己内酯)共混物(TPS/PCL)。这些材料适用于生物医学应用,特别是用于从TPS相中局部释放抗生素(ATB)。在整个浓度范围内制备了TPS/PCL共混物。与基于组分粘度的理论预测一致,发现组成比例为70/30 wt.%的TPS/PCL共混物具有双连续形态。通过优化加工条件并尽可能保持加工温度较低,实现了共混物最低程度的热机械降解,因为较高的温度可能会在最终应用中损坏ATB。通过扫描电子显微镜验证了共混物的均一性。通过亚微米计算机断层扫描确认了双连续形态。在微观尺度(通过仪器化微压痕硬度测试;MHI)和宏观尺度(通过动态热机械分析;DMTA)对共混物的力学性能进行了表征。在TPS/PCL(70/30)共混物中,TPS的弹性模量增加了约四倍。通过MHI和DMTA测量的弹性模量之间的相关性非常强,这意味着在未来的研究中,仅使用不需要大尺寸试样的微机械测试将成为可能。