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首页> 外文期刊>Macromolecules >COMPUTER SIMULATIONS ON THE FREE ENERGIES AND PHASE DIAGRAMS OF ASYMMETRICALLY INTERACTING BLENDS
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COMPUTER SIMULATIONS ON THE FREE ENERGIES AND PHASE DIAGRAMS OF ASYMMETRICALLY INTERACTING BLENDS

机译:不对称相互作用共混物的自由能和相位图的计算机模拟

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摘要

We consider binary polymer blends where the energetic interactions between the three different pairs of monomers are not equal to each other. From computer simulations in the isothermal-isobaric ensemble, we show that these disparate energetic interactions yield different packing behavior even at the level of the pure components. This results in the pure materials having unequal densities and cohesive energies. In the context of mixtures we have considered two cases. In the system termed ''attractive'' we have employed Lennard-Jones interactions which favor the formation of dissimilar 1-2 contacts. The residual chemical potential changes on mixing for both components, independently, appear to vary parabolically with system composition. If one chose to model these results with the Flory model [Or alternately, the polymer analog of the regular solution theory], then the chemical potential changes on mixing for each component would appear to be describable by a composition independent value of the chi parameter. However, the effective chi values derived from the two components are not equivalent. Since this finding violates thermodynamic consistency, it implies that the effective single chi parameter characterizing the free energy of mixing must be composition dependent. Similar results were obtained in the case of a ''nominally athermal'' blend, where the 1-2 interaction energy was selected to yield chi = 0 if the blend followed the Flory assumptions of incompressibility and randomly mixed chain segments. We show that these results can be explained on the basis of energetic effects and nonrandom mixing which is triggered by differences in the packing behavior of the pure components. Finally, this packing disparity also causes polymer blends with nominal chi = 0 in terms of the Flory lattice definition to phase separate. This phenomenon is a consequence of the coupling between packing and energetic interactions which yields an unfavorable enthalpy change on mixing. We conclude by emphasizing, in agreement with past theoretical calculations, the importance of packing effects in describing the thermodynamics of polymer systems, an issue which must be included if an improved description of polymer thermodynamics is to be achieved. [References: 40]
机译:我们考虑二元聚合物共混物,其中三对不同的单体之间的能量相互作用彼此不相等。从等温-等压系综中的计算机模拟,我们表明,即使在纯组分的水平上,这些不同的高能相互作用也会产生不同的堆积行为。这导致纯材料具有不相等的密度和内聚能。在混合环境中,我们考虑了两种情况。在称为“有吸引力”的系统中,我们采用了Lennard-Jones相互作用,这有利于形成不同的1-2接触。两种成分混合时残留的化学势变化独立地似乎随系统组成而发生抛物线变化。如果选择用弗洛里模型[或替代地,用常规溶液理论的聚合物类似物]对这些结果进行建模,则每种组分混合时的化学势变化似乎可以由chi参数的成分无关值来描述。但是,从这两个分量得出的有效chi值并不相等。由于该发现违反了热力学一致性,因此暗示表征混合自由能的有效单个chi参数必须取决于成分。在“名义上无热的”混合物的情况下,获得了相似的结果,如果混合物遵循遵循不可压缩性和随机混合链段的弗洛里假设,则选择1-2相互作用能产生chi = 0。我们表明,这些结果可以基于高能效应和由纯组分的填充行为差异触发的非随机混合来解释。最后,这种堆积差异还会导致就Flory晶格定义而言,标称chi = 0的聚合物共混物发生相分离。这种现象是填充和高能相互作用之间耦合的结果,在混合时产生不利的焓变。最后,通过与过去的理论计算相一致,强调堆积效应在描述聚合物系统热力学中的重要性,如果要实现对聚合物热力学的改进描述,则必须包括一个问题。 [参考:40]

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