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Evolution of morphologies of a PE-b-PEO block copolymer in an epoxy solvent induced by polymerization followed by crystallization-driven self-assembly of PE blocks during cooling

机译:通过聚合诱导的环氧溶剂中PE-B-PEO嵌段共聚物形态的演变,然后通过冷却过程中PE块的结晶驱动自组装

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摘要

Polymerization-induced nanostructuration combined with crystallization-driven self-assembly was used to generate complex nanostructures in an epoxy network. A PE-b-PEO block copolymer (M-n = 1400; 50 wt% PEO), was dispersed in diglycidylether of bisphenol A (DGEBA) and homopolymerization initiated by a tertiary amine was carried out at 120 degrees C (above the melting temperature of PE). The plasticization produced by the miscible PEO blocks decreased the T-g of the cured matrix to values located below the crystallization temperature of PE. Therefore, crystallization-driven self-assembly of PE blocks took place during the cooling step through the rubbery region of the epoxy network. Depending on the initial amount of PE-b-PEO dispersed in DGEBA, a variety of nanostructures could be generated, such as a dispersion of disk-like micelles (6.7 nm in thickness), a concentrated dispersion of short nanoribbons (50-200 nm in length and 6.7 nm in thickness), partially stacked and oriented in space, and complex spherulitic structures composed of large stacked nanoribbons. The thickness of micellar objects was close to the theoretical value of fully extended PE chains of the block copolymer. IR spectroscopy confirmed the all-trans conformation of PE chains. Therefore, crystals were formed by interdigitated PE chains, with PEO blocks tethered at both planar interfaces in an alternating way. The way in which these complex nanostructures affect the fracture resistance or functional properties (such as shape memory) of the resulting epoxy networks has yet to be analyzed.
机译:聚合诱导的纳米结构与结晶驱动的自组装合并,用于在环氧网络中产生复合纳米结构。 PE-B-PEO嵌段共聚物(Mn = 1400; 50wt%PEO)分散在双酚A(DGEBA)的二甘油醚中分散,并在120℃(PE的熔化温度以上)进行亚胺引发的均聚)。由混溶性PEO块产生的塑化降低了固化基质的T-G与位于PE的结晶温度下方的值。因此,在冷却步骤期间通过环氧网络的橡胶区域进行PE块的结晶驱动自组装。取决于分散在DGEBA中的PE-B-PEO的初始量,可以产生各种纳米结构,例如盘状胶束的分散体(厚度为6.7nm),短纳米纤维纤维胶的浓缩分散体(50-200nm在长度和6.7nm的厚度上),部分堆叠和定向在空间中,并且由大堆叠纳米波巴组成的复杂的球形结构。胶束物体的厚度接近嵌段共聚物的完全扩展PE链的理论值。 IR光谱证实了PE链的全转体构象。因此,晶体由间隙化的PE链形成,PEO块以交替的方式在两个平面界面上系。这些复合纳米结构影响所得环氧网络的裂缝抗性或功能性(例如形状记忆)的方式尚未分析。

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  • 来源
    《RSC Advances》 |2016年第41期|共10页
  • 作者单位

    Univ Mar del Plata Inst Mat Sci &

    Technol INTEMA JB Justo 4302 RA-7600 Mar Del Plata Buenos Aires Argentina;

    Univ Mar del Plata Inst Mat Sci &

    Technol INTEMA JB Justo 4302 RA-7600 Mar Del Plata Buenos Aires Argentina;

    Univ Nacl La Plata CONICET Inst Invest Fis Quim Teor &

    Aplicadas INIFTA CC 16 Suc 4 RA-1900 La Plata Buenos Aires Argentina;

    Univ Mar del Plata Inst Mat Sci &

    Technol INTEMA JB Justo 4302 RA-7600 Mar Del Plata Buenos Aires Argentina;

    Univ Mar del Plata Inst Mat Sci &

    Technol INTEMA JB Justo 4302 RA-7600 Mar Del Plata Buenos Aires Argentina;

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  • 正文语种 eng
  • 中图分类 化学;
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