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首页> 外文期刊>The Journal of Chemical Physics >MICROSCOPIC PARAMETERS INFLUENCING THE PHASE SEPARATION IN COMPRESSIBLE BINARY BLENDS OF LINEAR SEMIFLEXIBLE POLYMERS
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MICROSCOPIC PARAMETERS INFLUENCING THE PHASE SEPARATION IN COMPRESSIBLE BINARY BLENDS OF LINEAR SEMIFLEXIBLE POLYMERS

机译:影响线性半柔性聚合物可压缩二元共混物中相分离的微观参数

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The lattice cluster theory (LCT) is used to determine the essential microscopic parameters that influence the phase separation in binary blends of linear semiflexible lattice chains with equal polymerization indices. The LCT and the polymer reference interaction site model are shown to predict nearly identical and universal constant volume phase behaviors (after simple numerical rescaling of the polymerization indices) for ''athermal'' blends with vanishing van der Waals attractive energies. Phase separation in these systems is driven solely by stiffness disparities. LCT computations are extended to ''thermal'' systems in which the van der Waals interactions are large enough to produce liquid densities at standard temperature and pressure. Both the stiffness disparity between the blend components and the relative magnitudes of the van der Waals interaction energies influence the phase behavior of the model blends. We find a family of universal constant volume spinodals, parameterized by the exchange energy. Compressibility is shown to produce significant enthalpic contributions to phase separation, even when all van der Waals energies are identical. We also study the pressure dependence of these model blends, as well as the variety of qualitatively different phase behaviors exhibited. A future work will determine the combined influence of monomer structure, semiflexibility, van der Waals interactions, and the energetic implications of compressibility on the phase behavior of polyolefin blends. (C) 1997 American Institute of Physics. [References: 42]
机译:晶格簇理论(LCT)用于确定影响具有相等聚合指数的线性半柔性晶格链的二元共混物中相分离的基本微观参数。 LCT和聚合物参考相互作用位点模型显示出可以预测范德华力消失的“无热”共混物的几乎相同且通用的恒定体积相行为(在对聚合指数进行简单的数值重新换算后)。这些系统中的相分离仅由刚度差异驱动。 LCT计算扩展到“热”系统,在该系统中范德华相互作用足够大,可以在标准温度和压力下产生液体密度。共混物组分之间的刚度差异以及范德华相互作用能的相对大小都会影响模型共混物的相态。我们发现了一个由交换能量参数化的通用恒容旋节线轴族。即使所有范德华能量都相同,可压缩性也会对相分离产生重要的焓贡献。我们还研究了这些模型混合物的压力依赖性,以及各种定性不同的相行为。未来的工作将确定单体结构,半柔韧性,范德华相互作用以及压缩率对聚烯烃共混物相行为的高能影响的综合影响。 (C)1997美国物理研究所。 [参考:42]

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