Yamamoto Umi, Schweizer Kenneth S
Department of Physics, ‡Departments of Materials Science and Chemistry, and §Frederick Seitz Materials Research Laboratory, University of Illinois, Urbana, Illinois 61801, United States.
Department of Physics, Departments of Materials Science and Chemistry, and §Frederick Seitz Materials Research Laboratory, University of Illinois, Urbana, Illinois 61801, United States.
ACS Macro Lett. 2015 Jan 20;4(1):53-57. doi: 10.1021/mz500708z. Epub 2014 Dec 22.
We present a microscopic self-consistent theory for the long-time diffusion of infinitely thin rods in a hard sphere matrix based on the simultaneous dynamical treatment of topological uncrossability and finite excluded volume constraints. Distinctive regimes of coupled anisotropic longitudinal and transverse diffusion are predicted, and steric blocking of the latter leads to a tube-like localization transition largely controlled by the ratio of the sphere diameter to rod length and tube diameter. For entangled polymers, in a limited regime of strongly retarded dynamics a "doubly renormalized" reptation law is predicted where the confinement tube is compressed and longitudinal motion is partially blocked. At high sphere volume fractions, strong suppression of rod motion results in dynamic localization in the unentangled regime. The present advance provides a theoretical foundation to treat differential mobility effects and flexible chain dynamics in diverse polymer-particle mixtures.
我们基于对拓扑不可穿越性和有限排除体积约束的同时动态处理,提出了一种微观自洽理论,用于描述无限细棒在硬球基质中的长时间扩散。预测了耦合各向异性纵向和横向扩散的独特区域,后者的空间位阻导致了一种类似管的局域化转变,这主要由球直径与棒长度以及管直径的比值控制。对于缠结聚合物,在动力学强烈延迟的有限区域内,预测了一种“双重重整化”的蛇行定律,其中限制管被压缩,纵向运动部分受阻。在高球体积分数下,棒运动的强烈抑制导致在非缠结区域的动态局域化。目前的进展为处理各种聚合物 - 颗粒混合物中的差异迁移率效应和柔性链动力学提供了理论基础。