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首页> 外文期刊>The Journal of Chemical Physics >Phase behavior and structure formation in linear multiblock copolymer solutions by Monte Carlo simulation
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Phase behavior and structure formation in linear multiblock copolymer solutions by Monte Carlo simulation

机译:线性多嵌段共聚物溶液的相行为和结构形成的蒙特卡洛模拟

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The solution phase behavior of short, strictly alternating multiblock copolymers of type (A(n)B(n))(m) was studied using lattice Monte Carlo simulations. The polymer molecules were modeled as flexible chains in a monomeric solvent selective for block type A. The degree of block polymerization n and the number of diblock units per chain m were treated as variables. We show that within the regime of parameters accessible to our study, the thermodynamic phase transition type is dependent on the ratio of m. The simulations show microscopic phase separation into roughly spherical aggregates for m ratios less than a critical value and first-order macroscopic precipitation otherwise. In general, increasing m at fixed n, or n at fixed m, promotes the tendency toward macroscopic phase precipitation. The enthalpic driving force of phase change is found to universally scale with chain length for all multiblock systems considered and is independent of the existence of a true phase transition. For aggregate forming systems at low amphiphile concentrations, multiblock chains are shown to self-assemble into intramolecular, multichain clusters. Predictions for microstructural dimensions, including critical micelle concentration, equilibrium size, shape, aggregation parameters, and density distributions, are provided. At increasing amphiphile density, interaggregate bridging is shown to result in the formation of networked structures, leading to an eventual solution-gel transition. The gel is swollen and consists of highly interconnected aggregates of approximately spherical morphology. Qualitative agreement is found between experimentally observed physical property changes and phase transitions predicted by simulations. Thus, a potential application of the simulations is the design of multiblock copolymer systems which can be optimized with regard to solution phase behavior and ultimately physical and mechanical properties. (c) 2008 American Institute of Physics.
机译:使用晶格蒙特卡洛模拟研究了(A(n)B(n))(m)型短,严格交替的多嵌段共聚物的溶液相行为。将聚合物分子建模为在对嵌段类型A选择性的单体溶剂中的柔性链。将嵌段聚合度n和每条链的二嵌段单元数m视为变量。我们表明,在我们的研究可访问的参数范围内,热力学相变类型取决于m / n的比值。模拟显示微观相分离成大致球形聚集体,m / n比小于临界值,否则为一阶宏观沉淀。通常,在固定n处增加m或在固定m处增加n会促进宏观相沉淀的趋势。对于所有考虑的多嵌段体系,发现相变的焓驱动力普遍随链长而定,并且与真实相变的存在无关。对于低两亲物浓度的聚集体形成系统,多嵌段链显示为自组装成分子内多链簇。提供了微观结构尺寸的预测,包括临界胶束浓度,平衡尺寸,形状,聚集参数和密度分布。随着两亲物密度的增加,聚集体之间的桥联作用会导致网络结构的形成,最终导致溶液-凝胶转变。凝胶溶胀,由高度互连的近似球形的聚集体组成。在实验观察到的物理性质变化与模拟预测的相变之间发现了定性一致性。因此,模拟的潜在应用是多嵌段共聚物体系的设计,该体系可以在溶液相行为以及最终的物理和机械性能方面进行优化。 (c)2008年美国物理研究所。

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