Computational simulation of polymerization-induced phase separation under a temperature gradient

J. Oh, A.D. Rey
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引用次数: 23

Abstract

Polymerization-induced phase separation (PIPS) via spinodal decomposition (SD) under a temperature gradient for the case of a monomer polymerizing in the presence of a non-reactive polymer is studied using high performance computational methods. An initial polymer (A)/monomer (B) one-phase mixture, which has an upper critical solution temperature (UCST) and is maintained under a temperature gradient, phase-separates and evolves to form spatially inhomogeneous microstructures. The space-dependence of the phase-separated structures under the temperature gradient field is determined and characterized using quantitative visualization methods. It is found that a droplet-type phase-separated structure is formed in the high-temperature region, corresponding to the intermediate stage of SD. On the other hand, lamella or interconnected cylinder type of phase-separated structure is observed in the low-temperature region, corresponding to the early stage of SD structure, in the large or small temperature gradient field, respectively. The kinetics of the morphological evolution depends on the magnitude of the temperature gradient field. The non-uniform morphology induced by the temperature gradient is characterized using novel morphological techniques, such as the intensity and scale of segregation. It is found that significant non-uniform structures are formed in a temperature gradient in contrast to the uniform morphology formed under constant temperature.

温度梯度下聚合诱导相分离的计算模拟
采用高性能计算方法研究了在温度梯度下单体在非反应性聚合物存在下聚合诱导相分离(PIPS)。初始聚合物(A)/单体(B)单相混合物具有较高的临界溶解温度(UCST),并保持在温度梯度下,相分离并演变形成空间不均匀的微观结构。利用定量可视化方法确定了温度梯度场下相分离结构的空间依赖性。发现高温区域形成了液滴型相分离结构,对应于SD的中间阶段。另一方面,在大温度梯度场和小温度梯度场的低温区,分别观察到与SD结构的早期阶段相对应的片层型和连通圆柱型相分离结构。形态演化的动力学取决于温度梯度场的大小。利用新的形态学技术对温度梯度引起的非均匀形貌进行了表征,如偏析的强度和规模。发现在温度梯度下形成明显的不均匀结构,而在恒定温度下形成均匀的形貌。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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