Curk Tine, Luijten Erik
Department of Materials Science & Engineering, Northwestern University, Evanston, IL 60208.
Department of Engineering Sciences & Applied Mathematics, Northwestern University, Evanston, IL 60208.
Proc Natl Acad Sci U S A. 2023 Aug 8;120(32):e2304655120. doi: 10.1073/pnas.2304655120. Epub 2023 Jul 31.
The process of phase separation in elastic solids and viscous fluids is of fundamental importance to the stability and function of soft materials. We explore the dynamics of phase separation and domain growth in a viscoelastic material such as a polymer gel. Using analytical theory and Monte Carlo simulations, we report a domain growth regime in which the domain size increases algebraically with a ripening exponent [Formula: see text] that depends on the viscoelastic properties of the material. For a prototypical Maxwell material, we obtain [Formula: see text], which is markedly different from the well-known Ostwald ripening process with [Formula: see text]. We generalize our theory to systems with arbitrary power-law relaxation behavior and discuss our findings in the context of the long-term stability of materials as well as recent experimental results on phase separation in cross-linked networks and cytoskeleton.
弹性固体和粘性流体中的相分离过程对于软材料的稳定性和功能至关重要。我们探究了诸如聚合物凝胶等粘弹性材料中的相分离和畴生长动力学。通过解析理论和蒙特卡罗模拟,我们报告了一种畴生长模式,其中畴尺寸随成熟指数[公式:见正文]呈代数增长,该指数取决于材料的粘弹性特性。对于典型的麦克斯韦材料,我们得到[公式:见正文],这与熟知的奥斯特瓦尔德熟化过程([公式:见正文])明显不同。我们将理论推广到具有任意幂律弛豫行为的系统,并在材料的长期稳定性以及交联网络和细胞骨架中相分离的近期实验结果的背景下讨论我们的发现。