Tree Douglas R, Iwama Tatsuhiro, Delaney Kris T, Lee Joshua, Fredrickson Glenn H
Chemical Engineering Department, Brigham Young University, Provo, Utah 84602, United States.
Asahi Kasei Corporation, 2-1 Samejima, Fuji, Shizuoka 416-8501, Japan.
ACS Macro Lett. 2018 May 15;7(5):582-586. doi: 10.1021/acsmacrolett.8b00012. Epub 2018 Apr 27.
Motivated by the much discussed, yet unexplained, presence of macrovoids in polymer membranes, we explore the impact of Marangoni flows in the process of nonsolvent induced phase separation. Such flows have been hypothesized to be important to the formation of macrovoids, but little quantitative evidence has been produced to date. Using a recently developed multifluid phase field model, we find that roll cells indicative of a solutal Marangoni instability are manifest during solvent/nonsolvent exchange across a stable interface. However, these flows are weak and subsequently do not produce morphological features that might lead to macrovoid formation. By contrast, initial conditions that lead to an immediate precipitation of the polymer film coincide with large Marangoni flows that disturb the interface. The presence of such flows suggests a new experimental and theoretical direction in the search for a macrovoid formation mechanism.
受聚合物膜中备受讨论但尚未得到解释的大孔存在的启发,我们探讨了马兰戈尼流在非溶剂诱导相分离过程中的影响。据推测,这种流动对大孔的形成很重要,但迄今为止几乎没有产生定量证据。使用最近开发的多流体相场模型,我们发现,在溶剂/非溶剂通过稳定界面交换期间,表明溶质马兰戈尼不稳定性的滚动单元会出现。然而,这些流动很微弱,随后不会产生可能导致大孔形成的形态特征。相比之下,导致聚合物膜立即沉淀的初始条件与扰乱界面的大马兰戈尼流相吻合。这种流动的存在为寻找大孔形成机制提供了一个新的实验和理论方向。