Debets Vincent E, Luo Chengjie, Ciarella Simone, Janssen Liesbeth M C
Department of Applied Physics, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.
Institute for Complex Molecular Systems, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.
Phys Rev E. 2021 Dec;104(6-2):065302. doi: 10.1103/PhysRevE.104.065302.
Generalized mode-coupling theory (GMCT) has recently emerged as a promising first-principles theory to study the poorly understood dynamics of glass-forming materials. Formulated as a hierarchical extension of standard mode-coupling theory (MCT), it is able to systematically improve its predictions by including the exact dynamics of higher-order correlation functions into its hierarchy. However, in contrast to Newtonian dynamics, a fully generalized version of the theory based on Brownian dynamics is still lacking. To close this gap, we provide a detailed derivation of GMCT for colloidal mixtures obeying a many-body Smoluchowski equation. We demonstrate that a hierarchy of coupled equations can again be established and show that these, consistent with standard MCT, are identical to the ones obtained from Newtonian GMCT when taking the overdamped limit. Consequently, the nontrivial similarity between Brownian and Newtonian MCT is maintained for our multicomponent GMCT. As a proof of principle, we also solve the generalized mode-coupling equations for the binary Kob-Andersen Lennard-Jones mixture undergoing Brownian dynamics and confirm the improved predictive power of the theory upon using more levels of the GMCT hierarchy of equations.
广义模式耦合理论(GMCT)最近已成为一种很有前景的第一性原理理论,用于研究人们了解甚少的玻璃形成材料的动力学。作为标准模式耦合理论(MCT)的分层扩展,它能够通过将高阶关联函数的精确动力学纳入其层次结构来系统地改进其预测。然而,与牛顿动力学不同,基于布朗动力学的完全广义版本的理论仍然缺乏。为了填补这一空白,我们给出了服从多体斯莫卢霍夫斯基方程的胶体混合物的GMCT的详细推导。我们证明了可以再次建立一个耦合方程组,并表明这些方程与标准MCT一致,在取过阻尼极限时与从牛顿GMCT得到的方程相同。因此,对于我们的多组分GMCT,布朗动力学和牛顿MCT之间的非平凡相似性得以保持。作为原理验证,我们还求解了经历布朗动力学的二元科布-安德森 Lennard-Jones 混合物的广义模式耦合方程,并证实了使用更多层次的GMCT方程组时该理论的预测能力有所提高。