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3D printed biodegradable functional temperature-stimuli shape memory polymer for customized scaffoldings

机译:3D印刷可生物降解的功能温度刺激形状记忆聚合物,用于定制脚手架

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Shape memory polymers (SMPs) and their composites have become the prominent choice of the various industries owing to the unique inherent characteristics which can be stimulated through the exposure of external stimuli. The use of SMPs in the three-dimensional (3D) technologies has produced enormous advantages. However, the potential of SMPs in 3D printing has limitedly explored. In the present study, an investigation was performed to study the shape memory effect (SME) of the fused filament fabricated (FFF) chitosan (CS) reinforced poly-lactic-acid (PLA) based porous scaffolds. Firstly, the composite filaments, with 1, 1.5, and 2% wt. of CS, were fabricated by using the twin-screw extrusion process, which was later used to print the test specimens at different infill density. The printed samples were selectively pre-elongated to 2.5 mm and then processed through direct heating, at 60-70 degrees C, for enabling the SME. It has been observed that the CS particles acted as rigid phases and interrupted the re-ordering of PLA chain. However, the scaffoldings showed 18.8% shape recovery at optimized process parametric settings. In addition, wettability and biocompatibility analyses of developed scaffoldings have also been performed to investigate the biological aspects of the developed scaffoldings. The stimulated samples found to be possessed with good wettability and cell proliferation. Overall, the 3D printed PLA/CS porous scaffoldings have shown significant shape recovery characteristics and are biologically active to be used as self-healing implants for acute bone deficiencies.
机译:由于可以通过外部刺激的暴露刺激的独特固有特性,形状记忆聚合物(SMPS)及其复合材料已成为各种行业的突出选择。在三维(3D)技术中使用SMPS产生了巨大的优点。然而,3D印刷中的SMPS的潜力有限探索。在本研究中,进行了研究以研究制造熔丝长丝(FFF)壳聚糖(CS)增强的多乳酸(PLA)的多孔支架的形状记忆效应(SME)。首先,复合丝,1,1.5和2%wt。通过使用双螺杆挤出方法制造Cs,后来用于以不同的填充密度印刷试样。将印刷样品选择性地预先预先伸入2.5mm,然后通过直接加热处理,以在60-70℃下加工,以使中光线能够。已经观察到CS颗粒充当刚性相并中断了PLA链的重新排序。然而,脚手架在优化的过程参数设置下显示出18.8%的形状恢复。此外,还已经进行了发育脚手架的润湿性和生物相容性分析,以研究发育脚手架的生物学方面。发现刺激的样品具有良好的润湿性和细胞增殖。总的来说,3D印刷PLA / CS多孔脚手架已经显示出显着的形状回收特性,并且具有生物活性,以用作急性骨不足的自我愈合植入物。

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