首页> 外文期刊>Journal of Applied Polymer Science >Crystallization Kinetics of Poly(L-Lactide)/Carbonated Hydroxyapatite Nanocomposite Microspheres
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Crystallization Kinetics of Poly(L-Lactide)/Carbonated Hydroxyapatite Nanocomposite Microspheres

机译:聚(L-丙交酯)/碳酸羟基磷灰石纳米复合微球的结晶动力学

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摘要

Microspheres consisting of carbonated hydroxyapatite (CHAp) nanoparticles and poly(L-lactide) (PLLA) have been fabricated for use in the construction of osetoconductive bone tissue engineering scaffolds by selective. laser sintering (SLS). In SLS, PLLA polymer melts and crystallizes. It is therefore necessary to study the crystallization kinetics of PLLA/CHAp nanocomposites. The effects of 10 wt% CHAp nanoparticles on the isothermal and nonisothermal crystallization behavior of PLLA matrix were studied, using neat PLLA for comparisons. The Avrami equation was successfully applied for the analysis of isothermal crystallization kinetics. Using the Lauritzen-Hoffman theory, the transition temperature from crystallization Regime 11 to Regime III was found to be around 120 degrees C for both neat PLLA and PLLA/CHAp nanocomposite. The combined Avrami-Ozawa equation was used to analyze the nonisothermal crystallization process, and it was found that the Ozawa exponent was equal to the Avrami exponent for neat PLLA and PLLA/CHAp nano-composite, respectively. The effective activation energy as a function of the relative crystallinity and temperature for neat PLLA and PLLA/CHAp nanocomposite under the nonisothermal crystallization condition was obtained by using the Friedman differential isoconversion method. The Lauritzen-Hoffman parameters were also determined from the nonisothermal crystallization data by using the Vyazovkin-Sbirrazzuoli equation. CHAp nanoparticles in the composite acted as an efficient nucleating agent, enhancing the nucleation rate but at the same time reducing the spherulite growth rate. This investigation has provided significant insights into the crystallization behavior of PLLA/CHAp nanocomposites, and the results obtained are very useful for making good quality PLLA/CHAp scaffolds through SLS.
机译:已经制造了由碳酸羟基磷灰石(CHAp)纳米颗粒和聚L-丙交酯(PLLA)组成的微球,用于通过选择性构建骨传导性骨组织工程支架。激光烧结(SLS)。在SLS中,PLLA聚合物会熔融并结晶。因此,有必要研究PLLA / CHAp纳米复合材料的结晶动力学。使用纯PLLA进行比较,研究了10 wt%CHAp纳米颗粒对PLLA基质的等温和非等温结晶行为的影响。 Avrami方程已成功应用于等温结晶动力学分析。使用Lauritzen-Hoffman理论,发现纯PLLA和PLLA / CHAp纳米复合材料从结晶区11到区III的转变温度均为120℃左右。利用组合的Avrami-Ozawa方程分析了非等温结晶过程,发现纯净的PLLA和PLLA / CHAp纳米复合材料的Ozawa指数分别等于Avrami指数。使用弗里德曼差分等转换方法,获得了非等温结晶条件下纯PLLA和PLLA / CHAp纳米复合材料的有效活化能与相对结晶度和温度的关系。还通过使用Vyazovkin-Sbirrazzuoli方程从非等温结晶数据中确定了Lauritzen-Hoffman参数。复合材料中的CHAp纳米粒子充当有效的成核剂,提高了成核速率,但同时降低了球晶的生长速率。这项研究为PLLA / CHAp纳米复合材料的结晶行为提供了重要的见识,并且获得的结果对于通过SLS制备高质量的PLLA / CHAp支架非常有用。

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