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Meso-scale Modeling of Block Copolymers Self-Assembly in Casting Solutions for Membrane Manufacture

机译:膜制造铸造解决方案中嵌段共聚物自组装的细观模型

摘要

Isoporous membranes manufactured from diblock copolymer are successfully produced at laboratory scale under controlled conditions. Because of the complex phenomena involved, membrane preparation requires trial and error methodologies to find the optimal conditions, leading to a considerable demand of resources. Experimental insights demonstrate that the self-assembly of the block copolymers in solution has an effect on the final membrane structure. Nevertheless, the complete understanding of these multi-scale phenomena is elusive. Herein we use the coarse-grained method Dissipative Particle Dynamics to study the self-assembly of block copolymers that are used for the preparation of the membranes.udTo simulate representative time and length scales, we introduce a framework for model reduction of polymer chain representations for dissipative particle dynamics, which preserves the properties governing the phase equilibria. We reduce the number of degrees of freedom by accounting for the correlation between beads in fine-grained models via power laws and the consistent scaling of the simulation parameters.udThe coarse-graining models are consistent with the experimental evidence, showing a morphological transition of the aggregates as the polymer concentration and solvent affinity change. We show that hexagonal packing of the micelles can occur in solution within different windows of polymer concentration depending on the solvent affinity.udHowever, the shape and size dispersion of the micelles determine the characteristic arrangement. We describe the order of crew-cut micelles using a rigid-sphere approximation and propose different phase parameters that characterize the emergence of monodisperse-spherical micelles in solution.udAdditionally, we investigate the effect of blending asymmetric diblock copolymers (AB/AC) over the properties of the membranes. We observe that the co-assembly mechanism localizes the AC molecules at the interface of A and B domains, and induces the swelling of the B-rich domains. The B-C interactions control the curvature of the assemblies in these blends.udFinally, we study the self-assembly triblock copolymers used for membranes fabrication. We show that the polymer concentration, the block-copolymer composition, and the swelling of the micelle are responsible for the formation of elongated micelles in the casting solution. The formation of nanoporous membranes arises from the network-like packing of those micelles.
机译:由二嵌段共聚物制成的等孔膜已在实验室规模和受控条件下成功生产。由于涉及的复杂现象,膜的制备需要反复试验的方法才能找到最佳条件,从而导致对资源的巨大需求。实验结果表明,嵌段共聚物在溶液中的自组装对最终的膜结构有影响。然而,对这些多尺度现象的完整理解是遥不可及的。本文中,我们使用粗粒度方法“耗散粒子动力学”来研究用于制备膜的嵌段共聚物的自组装。 ud为了模拟代表性的时间和长度尺度,我们引入了一个模型化聚合物链表示的框架用于耗散粒子动力学,它保留了控制相平衡的特性。我们通过幂定律考虑细粒度模型中珠粒之间的相关性以及模拟参数的一致缩放,从而减少了自由度的数量。 ud粗粒度模型与实验证据一致,显示出形态学上的转变。随着聚合物浓度和溶剂亲和力的变化聚集体发生变化。我们表明,取决于溶剂亲和力,胶束的六边形堆积可以在溶液中在不同的聚合物浓度窗口内发生。 ud但是,胶束的形状和尺寸分散决定了特征排列。我们使用刚体球近似法描述了船员切割的胶束的顺序,并提出了表征溶液中单分散球形胶束出现的不同相参数。另外,我们研究了在不饱和二嵌段共聚物(AB / AC)上共混的效果。膜的特性。我们观察到,co-assembly机制将AC分子定位在A和B结构域的界面,并诱导富B结构域的膨胀。 B-C相互作用控制这些共混物中组件的曲率。 ud最后,我们研究了用于膜制造的自组装三嵌段共聚物。我们表明,聚合物浓度,嵌段共聚物组成和胶束的溶胀是造成浇铸溶液中细长胶束形成的原因。纳米多孔膜的形成源自那些胶束的网络状堆积。

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    Moreno Chaparro Nicolas;

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  • 年度 2016
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  • 正文语种 en
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