论文标题

受限胶体硬盘的流变学

The rheology of confined colloidal hard discs

论文作者

Williams, Ian, Oğuz, Erdal C., Löwen, Hartmut, Poon, Wilson C. K., Royall, C. Patrick

论文摘要

胶体可以被视为“大原子”,因此它们是原子和分子系统的良好模型。因此,胶体硬盘是2D材料的良好模型,尽管它们的相行为表征得很好,但流变学的关注却相对较少。在这里,我们利用了一种新颖的,粒子分辨的,实验性的设置和互补的计算机模拟,以在极端限制中测量准硬盘胶体的剪切流变性。特别是,我们将准2D硬盘限制在一个由27个颗粒组成的圆形“畜栏”中。限制和剪切抑制将发生在散装中并产生分层流体的六边形排序。我们通过平衡每一层的阻力和驱动力来衡量系统的流变学。鉴于极端的限制,值得注意的是,我们的系统表现出与未约束的2D和3D硬粒子系统非常相似的流变行为,其特征是动态屈服应力和可比幅度的剪切幅度。通过量化垂直于剪切的粒子运动,我们表明颗粒变得更加紧密地局限于其层,而随着剪切速率的增加,密度不同时增加。因此,剪切稀疏是由于剪切速率增加而导致层之间相互作用减弱引起的耗散的结果。我们通过在rotne-prager张量的水平上包含流体动力相互作用(HI)的布朗动力学模拟来重现我们的实验。纳入HI是重现我们的实验所必需的,证明了它们在通过系统传播动量方面的重要性。

Colloids may be treated as `big atoms' so that they are good models for atomic and molecular systems. Colloidal hard disks are therefore good models for 2d materials and although their phase behavior is well characterized, rheology has received relatively little attention. Here we exploit a novel, particle-resolved, experimental set-up and complementary computer simulations to measure the shear rheology of quasi-hard-disc colloids in extreme confinement. In particular, we confine quasi-2d hard discs in a circular `corral' comprised of 27 particles held in optical traps. Confinement and shear suppress hexagonal ordering that would occur in the bulk and create a layered fluid. We measure the rheology of our system by balancing drag and driving forces on each layer. Given the extreme confinement, it is remarkable that our system exhibits rheological behavior very similar to unconfined 2d and 3d hard particle systems, characterized by a dynamic yield stress and shear-thinning of comparable magnitude. By quantifying particle motion perpendicular to shear, we show that particles become more tightly confined to their layers with no concomitant increase in density upon increasing shear rate. Shear thinning is therefore a consequence of a reduction in dissipation due to a weakening in interactions between layers as the shear rate increases. We reproduce our experiments with Brownian Dynamics simulations with Hydrodynamic Interactions (HI) included at the level of the Rotne-Prager tensor. That the inclusion of HI is necessary to reproduce our experiments is evidence of their importance in transmission of momentum through the system.

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