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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Studies on the interactions of CO2 with biodegradable poly(DL-lactic acid) and poly(lactic acid-co-glycolic acid) copolymers using high pressure ATR-IR and high pressure rheology
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Studies on the interactions of CO2 with biodegradable poly(DL-lactic acid) and poly(lactic acid-co-glycolic acid) copolymers using high pressure ATR-IR and high pressure rheology

机译:利用高压ATR-IR和高压流变学研究CO2与可生物降解的聚(DL-乳酸)和聚(乳酸-共乙醇酸)共聚物的相互作用

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Amorphous poly(DL-lactic acid) (P(DL)LA) and poly(lactic acid-co-glycolic acid) (PLGA) polymers have been used to fabricate porous scaffolds for tissue engineering applications via a supercritical foaming technique The chemical composition of the polymers and the morphology (pore size, porosity and inter-connectivity) of the scaffolds are crucial because they influence cell filtration, migration, nutrient exchange, degradation and drug release rate. To control the morphology of supercritical foamed scaffolds, it is essential to study the interactions of polymers with CO2 and the consequent solubility of CO2 in the polymers, as well as the viscosity of the plasticized polymers. In this paper, we are showing for the first time that well known and useful biodegradable polymers can be plasticized easily using high-pressure CO2 and that we can monitor this process easily via a high pressure attenuated total reflection Fourier transform infrared (ATR-IR) and rheology. High pressure ATR-IR has been developed to investigate the interactions of CO2 with P(DL)LA and PLGA polymers with the glycolic acid (GA) content in the copolymers as 15, 25, 35 and 50% respectively. Shifts and intensity changes of IR absorption bands of the polymers in the carbonyl region (similar to 1750 cm(-1)) are indicative of the interaction on a qualitative level A high pressure parallel plate rheometer has also been developed for the shear viscosity measurements of the CO2-plastisized polymers at a temperature below their glass transition temperatures The results demonstrate that the viscosities of the CO2-plasticized polymers at 35 degrees C and 100 bar were comparable to the values for the polymer melts at 140 degrees C, demonstrating a significant process advantage through use of scCO(2). The data from the high pressure rheology and high pressure ATR-IR, combined with the sorption and swelling studies reported previously, demonstrate that the interaction and the solubility of CO2 in PLGA copolymers is related to the glycolic acid content As the glycolic acid ratio increases the interaction and consequent solubility of CO2 decreases. The potential applications of this study are very broad, from tissue engineering and drug delivery to much broader applications with other polymers in areas that may range from composites and polymer synthesis through to injection moulding.
机译:非晶态聚(DL-乳酸)(P(DL)LA)和聚(乳酸-乙醇酸共聚物)(PLGA)聚合物已通过超临界发泡技术用于制造用于组织工程的多孔支架。支架的聚合物和形态(孔径,孔隙率和互连性)至关重要,因为它们会影响细胞过滤,迁移,营养物交换,降解和药物释放速率。为了控制超临界泡沫支架的形态,必须研究聚合物与CO2的相互作用以及随之而来的CO2在聚合物中的溶解度以及增塑聚合物的粘度。在本文中,我们首次展示了可以使用高压CO2轻松塑化众所周知且有用的可生物降解聚合物,并且可以通过高压衰减全反射傅立叶变换红外(ATR-IR)轻松监控此过程。和流变学。已经开发出高压ATR-IR来研究CO与P(DL)LA和PLGA聚合物的相互作用,其中共聚物中乙醇酸(GA)的含量分别为15%,25%,35%和50%。聚合物在羰基区域(类似于1750 cm(-1))的IR吸收带的变化和强度变化表明了相互作用的定性水平。还开发了一种高压平行板流变仪,用于剪切粘度的测量。在低于其玻璃化转变温度的温度下,CO2增塑的聚合物的结果表明,在35摄氏度和100巴的压力下,该CO2增塑的聚合物的粘度与140摄氏度时的聚合物熔体的粘度相当,这表明了一个重要的过程通过使用scCO(2)获得优势。高压流变学和高压ATR-IR数据结合先前报道的吸附和溶胀研究表明,PLGA共聚物中CO2的相互作用和溶解度与乙醇酸含量有关。相互作用和随之而来的二氧化碳溶解度降低。这项研究的潜在应用范围非常广泛,从组织工程和药物输送到与其他聚合物的广泛应用,其领域可能从复合材料和聚合物合成到注塑成型。

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