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Highly toughened and heat resistant poly(L-lactide)/poly(e-caprolactone) blends via engineering balance between kinetics and thermodynamics of phasic morphology with stereocomplex crystallite

机译:高度增韧和耐热的聚(L-丙交酯)/聚(E-己内酯)通过工具平衡与具有立体络合物晶体的动力学和序列形态的热力学之间的工程平衡共混

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摘要

Enhancing matrix crystallization via forming stereocomplex (SC) crystallite has been considered as an effect way to improve the impact toughness and heat resistance of poly(L-lactide) (PLLA) when blending with other polymers. However, the roles of some of the key parameters, such as the kinetics of morphology evolution in blends, remain, yet, unclear, causing the troubles of the reproducibility of toughening PLLA by enhancing matrix crystallization and the stability in end-use applications (particularly in relative high temperature ranges). Herein, we provide a facile way to improve the toughness and heat resistance of PLLA via engineering the balance between the kinetics and thermodynamics of the dispersed phasic morphology in PLLA blends using PLLA/poly (epsilon-caprolactone) (PCL) (PLLA/PCL, 80/20 w/w) as an example, by adding a small amount of poly(D-lactide) (PDLA, = 1% w/w). The few PDLA chains naturally interact with PLLA matrix chains, and co-crystallize to form SC crystallites, yielding high crystalline PPLA matrix but in controllable crystallization kinetics and increase of melting viscosity. As such, the coalescence or arrest of dispersed PCL phase is tailored via the tempo-and thermodimensional balance manipulation of thermal annealing (thermodynamics) and injecting moulding (quenching, dynamics), that relies on the PDLA content. The ease, with which highly impact toughened and heat-resistant PLLA materials were obtained by optimizing and matching the PDLA content and processing parameters including temperature and time, points to new directions in designing toughened PLLA with an economic manner.
机译:通过形成立体络合物(SC)微晶的增强基质结晶已被认为是改善与其他聚合物混合时聚(L-丙交酯)(PLLA)的冲击韧性和耐热性的效果方法。然而,一些关键参数的作用,例如混合中的形态学进化的动力学,但仍然不清楚,通过提高矩阵结晶和最终用途应用中的稳定性来引起增韧PLLA的再现性的麻烦(特别是在相对高温范围内)。在此,我们提供了通过工程通过工程改善PLLA的韧性和耐热性的容易性方式,使用PLLA / poly(ε-己内酮)(PCL)(PLLA / PCL,通过加入少量聚(D-丙交酯)(PDLA,<= 1%w / w),为例.80 / 20 w / w)。少数PDLA链自然与PLLA基质链相互作用,并共结晶以形成SC微晶,得到高结晶PPLA基质,但在可控的结晶动力学和熔点粘度的增加中。因此,分散的PCL相的聚结或捕获通过热退火(热力学)的速度和热尺寸的平衡操纵来定制,并依赖于PDLA含量的注射成型(淬火,动态)。通过优化和匹配包括温度和时间的PDLA含量和加工参数来获得高度冲击和耐热PLLA材料的容易性,以经济方式设计强化PLLA的新方向。

著录项

  • 来源
    《Composites》 |2020年第15期|108155.1-108155.11|共11页
  • 作者单位

    Southwest Univ Sch Chem & Chem Engn Chongqing Key Lab Soft Matter Mat Chem & Funct Mf Chongqing 400715 Peoples R China;

    Southwest Univ Sch Chem & Chem Engn Chongqing Key Lab Soft Matter Mat Chem & Funct Mf Chongqing 400715 Peoples R China;

    Southwest Univ Sch Chem & Chem Engn Chongqing Key Lab Soft Matter Mat Chem & Funct Mf Chongqing 400715 Peoples R China;

    Huazhong Univ Sci & Technol Sch Chem & Chem Engn Minist Educ Key Lab Mat Chem Energy Convers & Storage Wuhan 430074 Peoples R China;

    Beijing Technol & Business Univ Beijing Key Lab Qual Evaluat Technol Hyg & Safety Beijing 100048 Peoples R China;

    Southwest Univ Sch Chem & Chem Engn Chongqing Key Lab Soft Matter Mat Chem & Funct Mf Chongqing 400715 Peoples R China|Beijing Technol & Business Univ Beijing Key Lab Qual Evaluat Technol Hyg & Safety Beijing 100048 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    L-lactide); Poly(epsilon-caprolactone); Stereocomplex crystallite; Morphology; Heat resistance;

    机译:L-丙交酯);聚(ε-己内酯);立体络合物结晶;形态;耐热性;

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