首页> 外文OA文献 >The Rheology of PEOT/PBT Block Copolymers in the Melt State and in the Thermally-Induced Sol/Gel Transition. Implications on the 3D-Printing Bio-Scaffold Process
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The Rheology of PEOT/PBT Block Copolymers in the Melt State and in the Thermally-Induced Sol/Gel Transition. Implications on the 3D-Printing Bio-Scaffold Process

机译:熔体状态下的PEOT / PBT嵌段共聚物的流变学及热诱导的溶胶/凝胶转变。对3D印刷生物脚轮工艺的影响

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摘要

Poly(ethyleneoxideterephthalate)/poly(butyleneterephthalate) (PEOT/PBT) segmented block copolymers are widely used for the manufacturing of 3D-printed bio-scaffolds, due to a combination of several properties, such as cell viability, bio-compatibility, and bio-degradability. Furthermore, they are characterized by a relatively low viscosity at high temperatures, which is desired during the injection stages of the printing process. At the same time, the microphase separated morphology generated by the demixing of hard and soft segments at intermediate temperatures allows for a quick transition from a liquid-like to a solid-like behavior, thus favoring the shaping and the dimensional stability of the scaffold. In this work, for the first time, the rheology of a commercial PEOT/PBT material is studied over a wide range of temperatures encompassing both the melt state and the phase transition regime. Non-isothermal viscoelastic measurements under oscillatory shear flow allow for a quantitative determination of the material processability in the melt state. Additionally, isothermal experiments below the order–disorder temperature are used to determine the temperature dependence of the phase transition kinetics. The importance of the rheological characterization when designing the 3D-printing scaffold process is also discussed.
机译:聚(ethyleneoxideterephthalate)/聚(对苯二甲酸丁二醇酯)(PEOT / PBT)链段嵌段共聚物广泛用于制造3D印刷生物支架,由于多种性质,例如细胞活力,生物兼容性,生物的组合 - 降解性。此外,它们的特征在于在高温下的相对低的粘度,这在印刷过程的注射阶段期间是期望的。同时,由中间温度的硬质和软段的解剖和软段中产生的微相分离形态允许从液体状到固体行为的快速过渡,从而有利于支架的成形和尺寸稳定性。在这项工作中,首次研究了商业PEOT / PBT材料的流变学,在包括熔体状态和相位过渡方案的各种温度范围内研究了商用PEOT / PBT材料。振荡剪切流下的非等​​温粘弹性测量允许定量测定熔体状态下的材料加工性。另外,低于订单障碍温度的等温实验用于确定相转移动力学的温度依赖性。还讨论了设计3D印刷脚手架过程时流变表征的重要性。

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