Material Measurement Laboratory, National Institute of Standards and Technology , Gaithersburg, Maryland 20899, United States.
Department of Chemical Engineering, National Tsing Hua University , Hsinchu, Taiwan 30013, Republic of China.
Langmuir. 2017 Mar 21;33(11):2817-2828. doi: 10.1021/acs.langmuir.7b00090. Epub 2017 Mar 9.
We present an experimental study of the structural and dynamical properties of bimodal, micrometer-sized colloidal dispersions (size ratio ≈ 2) in an aqueous solution of low-molecular-weight polymer (polyethylene glycol 2000) using synchrotron ultra-small angle X-ray scattering (USAXS) and USAXS-based X-ray photon correlation spectroscopy. We fixed the volume fraction of the large particles at 5% and systematically increased the volume fraction of the small particles from 0 to 5% to evaluate their effects on the structure and dynamics. The bimodal dispersions were homogenous through the investigated parameter space. We found that the partial structure factors can be satisfactorily retrieved for the bimodal colloidal dispersions using a Percus-Yevick hard-sphere potential when the size distributions of the particles were taken into account. We also found that the partial structure factor between the large particles did not exhibit a significant variation with increasing volume fraction of the small particles, whereas the isothermal compressibility of the binary mixture was found to decrease with increasing volume fraction of the small particles. The dynamics of single-component large-particle dispersion obey the principles of de Gennes narrowing, where the wave vector dependence of the interparticle diffusion coefficient is inversely proportional to the interparticle structure factor. The dynamics of the bimodal dispersions demonstrate a strong dependence on the fraction of small particles. We also made a comparison between the experimental effective dynamic viscosity of the bimodal dispersion with the theoretical predictions, which suggest that the complex mutual interactions between the large and small particles have a strong effect on the dynamic behaviors of bimodal dispersions.
我们通过同步加速器超小角 X 射线散射(USAXS)和基于 USAXS 的 X 射线光子相关光谱法,对低分子量聚合物(聚乙二醇 2000)水溶液中具有微米尺寸的双模态胶体分散体(大小比约为 2)的结构和动力学性质进行了实验研究。我们将大颗粒的体积分数固定在 5%,并系统地将小颗粒的体积分数从 0 增加到 5%,以评估它们对结构和动力学的影响。在所研究的参数空间内,双模态分散体是均匀的。我们发现,当考虑颗粒的尺寸分布时,双模态胶体分散体的偏结构因子可以使用 Percus-Yevick 硬球势令人满意地恢复。我们还发现,随着小颗粒体积分数的增加,大颗粒之间的偏结构因子没有明显变化,而二元混合物的等压压缩性随着小颗粒体积分数的增加而降低。单一组分大颗粒分散体的动力学遵循 de Gennes 变窄原理,其中颗粒间扩散系数的波矢依赖性与颗粒间结构因子成反比。双模态分散体的动力学强烈依赖于小颗粒的分数。我们还将双模态分散体的实验有效动态粘度与理论预测进行了比较,结果表明大颗粒和小颗粒之间的复杂相互作用对双模态分散体的动力学行为有很大的影响。