论文标题

胶体凝胶的非平衡主动力学方程建模

Nonequilibrium master kinetic equation modelling of colloidal gelation

论文作者

Rouwhorst, Joep, Schall, Peter, Ness, Christopher, Blijdenstein, Theo, Zaccone, Alessio

论文摘要

我们通过对关键的Casimir有吸引力的胶体系统,模拟和分析理论进行实验,介绍了弱吸引人胶体颗粒凝胶化过程中动力学簇生长过程的详细研究。在实验和模拟中,我们遵循簇生长过程中颗粒的平均配位数,以识别有吸引力的独立群集演化,这是平均配位数的函数。我们将这种簇演变与颗粒和粒子簇的动力学附着和脱离速率联系起来。我们发现,单粒子脱离在相关的弱有吸引力强度方案中占主导地位,而关联率几乎与群集大小无关。使用单粒子解离的极限和尺寸无关的关联率,我们分析群集群的主动力学方程式以预测凝胶前和之后的指数$ -3/2 $和$ -5/2 $的幂律群集质量分布,这些方程与实验和模拟数据一致。这些结果表明,观察到的临界卡西米尔诱导的凝胶化是二阶非平衡相变(详细平衡)。与这种情况一致,观察到最大簇的大小在接近关键平均配位数时,根据三维渗透率与幂律指数相差。

We present a detailed study of the kinetic cluster growth process during gelation of weakly attractive colloidal particles by means of experiments on critical Casimir attractive colloidal systems, simulations and analytical theory. In the experiments and simulations, we follow the mean coordination number of the particles during the growth of clusters to identify an attractive-strength independent cluster evolution as a function of mean coordination number. We relate this cluster evolution to the kinetic attachment and detachment rates of particles and particle clusters. We find that single-particle detachment dominates in the relevant weak attractive-strength regime, while association rates are almost independent of the cluster size. Using the limit of single-particle dissociation and size-independent association rates, we solve the master kinetic equation of cluster growth analytically to predict power-law cluster mass distributions with exponents $-3/2$ and $-5/2$ before and after gelation, respectively, which are consistent with the experimental and simulation data. These results suggest that the observed critical Casimir-induced gelation is a second-order nonequilibrium phase transition (with broken detailed balance). Consistent with this scenario, the size of the largest cluster is observed to diverge with power-law exponent according to three-dimensional percolation upon approaching the critical mean coordination number.

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