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首页> 外文期刊>Journal of Thermoplastic Composite Materials >Studies on confined crystallization behavior of nanobiocomposites consisting of acetylated bacterial cellulose and poly (lactic acid)
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Studies on confined crystallization behavior of nanobiocomposites consisting of acetylated bacterial cellulose and poly (lactic acid)

机译:由乙酰化细菌纤维素和聚乳酸组成的纳米生物复合材料的受限结晶行为研究

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摘要

This article deals with the confined crystallization behavior of nanobiocomposites consisting of acetylated bacterial cellulose (BC) and poly(lactic acid) (PLA). PLA/acetylated BC nanobiocomposites were prepared by compressed molding. Nonisothermal crystallization, melting behavior and isothermal crystallization kinetics within confined spaces were investigated by differential scanning calorimetry (DSC). The results indicated that acetylated BC was favorable to the crystallization of PLA at higher temperatures. On one hand, due to better compatibility between acetylated BC and PLA, crystal nucleation and growth of PLA took place while crystallization process of PLA was restricted. Acetylated BC had an effect of heterogeneous nucleation on PLA crystallization. On the other hand, crystal growth of PLA molecular chain was confined within the nanometer gaps between the microfibrils of acetylated BC. The interaction between microfibrils of acetylated BC and PLA also had an effect on the crystal growth of PLA, which resulted in the growth of confined crystallization. As the time course of acetylation became longer and longer, the compatibility of acetylated BC and PLA was enhanced and the crystallization of PLA became more difficult. This result was in accordance with the observation of polarized optical microscope (POM) pictures. Activation energy of crystallization and free energy surface of PLA were reduced in PLA and acetylated BC composites.
机译:本文讨论了由乙酰化细菌纤维素(BC)和聚乳酸(PLA)组成的纳米生物复合材料的受限结晶行为。通过压缩成型制备PLA /乙酰化的BC纳米生物复合材料。通过差示扫描量热法(DSC)研究了密闭空间内的非等温结晶,熔化行为和等温结晶动力学。结果表明,乙酰化的BC有利于PLA在较高温度下的结晶。一方面,由于乙酰化的BC与PLA的相容性更好,PLA的结晶成核和生长发生,而PLA的结晶过程受到限制。乙酰化BC对PLA结晶具有异相成核作用。另一方面,PLA分子链的晶体生长被限制在乙酰化BC微纤维之间的纳米间隙内。乙酰化BC微纤维与PLA之间的相互作用也影响了PLA的晶体生长,从而导致了有限结晶的生长。随着乙酰化的时间过程变得越来越长,乙酰化的BC和PLA的相容性增强,并且PLA的结晶变得更加困难。该结果与对偏振光学显微镜(POM)图片的观察一致。在PLA和乙酰化的BC复合材料中,结晶的活化能和PLA的自由能表面降低。

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