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Non-Isothermal cold-crystallization behavior and kinetics of poly(L-lactic acid)/WS2 inorganic nanotube nanocomposites

机译:聚(L-乳酸)/ WS2无机纳米管纳米复合材料的非等温冷结晶行为和动力学

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摘要

In order to accelerate the crystallization of poly(L-lactic acid) (PLLA) biopolymer and enhance its crystallizability, biocompatible and environmentally friendly tungsten disulphide inorganic nanotubes (INT-WS) were introduced into the polymer matrix. The non-isothermal cold-crystallization and subsequent melting behaviour of pure PLLA and PLLA/INT-WS nanocomposites were investigated in detail by varying both the heating rate and INT-WS loading. The kinetic parameters of the cold-crystallization process of PLLA chains under confined conditions, successfully described using Liu model, shows that the addition of INT-WS significantly increased the crystallization rate and reduced the total cold-crystallinity of PLLA, while the crystallization mechanism and crystal structure of PLLA remained unchanged in spite of the INT-WS loading. Similarly, the final crystallinity and melting behaviour of PLLA were controlled by both the incorporation INT-WS and variation of the heating rate. The differential isoconversional method of Friedman was applied to estimate the dependence of the effective activation energy on the relative crystallinity and temperature for PLLA and PLLA/INT-WS. On the other hand, the double-melting peaks, mainly derived from melting-recrystallization-melting processes upon heating, and their dynamic behaviour is coherent with a remarkable nucleation-promoting effect of INT-WS involved in accelerating the cold-crystallization of PLLA. These observations have considerable practical significance for the future sustainable, economic and effective technological utilisation of PLLA, as it will enable the development of novel melt-processable biopolymer nanocomposite materials.
机译:为了促进聚(L-乳酸)(PLLA)生物聚合物的结晶并增强其结晶性,将生物相容且环境友好的二硫化钨无机纳米管(INT-WS)引入聚合物基质中。通过改变加热速率和INT-WS负载量,详细研究了纯PLLA和PLLA / INT-WS纳米复合材料的非等温冷结晶及随后的熔融行为。在有限条件下对PLLA链进行冷结晶过程的动力学参数成功地使用Liu模型进行了描述,结果表明添加INT-WS可以显着提高PLLA的结晶速率并降低其总冷结晶度,同时其结晶机理和尽管有INT-WS加载,PLLA的晶体结构仍保持不变。同样,PLLA的最终结晶度和熔融行为受INT-WS掺入量和加热速率变化的控制。应用弗里德曼的差分等转换方法来估计PLLA和PLLA / INT-WS的有效活化能对相对结晶度和温度的依赖性。另一方面,双熔融峰主要来自加热时的熔融-再结晶-熔融过程,其动态行为与参与促进PLLA冷结晶的INT-WS显着的成核促进作用相一致。这些观察对于PLLA的未来可持续,经济和有效技术利用具有重要的现实意义,因为它将使新型可熔融加工的生物聚合物纳米复合材料的开发成为可能。

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