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水基锂蒙脱石分散体的微观结构和软玻璃动力学。

Microstructure and Soft Glassy Dynamics of an Aqueous Laponite Dispersion.

机构信息

Department of Chemical Engineering , Indian Institute of Technology Kanpur , India.

出版信息

Langmuir. 2018 Nov 6;34(44):13079-13103. doi: 10.1021/acs.langmuir.8b01830. Epub 2018 Sep 18.

Abstract

Synthetic hectorite clay Laponite RD/XLG is composed of disk-shaped nanoparticles that acquire dissimilar charges when suspended in an aqueous medium. Owing to their property to spontaneously self-assemble, Laponite is used as a rheology modifier in a variety of commercial water-based products. In particular, an aqueous dispersion of Laponite undergoes a liquid-to-solid transition at about 1 vol % concentration. The evolution of the physical properties as the dispersion transforms to the solid state is reminiscent of physical aging in molecular as well as colloidal glasses. The corresponding soft glassy dynamics of an aqueous Laponite dispersion, including the rheological behavior, has been extensively studied in the literature. In this feature article, we take an overview of recent advances in understanding soft glassy dynamics and various efforts taken to understand the peculiar rheological behavior. Furthermore, the continuously developing microstructure that is responsible for the eventual formation of a soft solid state that supports its own weight against gravity has also been a topic of intense debate and discussion. In particularly, extensive experimental and theoretical studies lead to two types of microstructures for this system: an attractive gel-like or a repulsive glass-like structure. We carefully examine and critically analyze the literature and propose a state (phase) diagram that suggests an aqueous Laponite dispersion to be present in an attractive gel state.

摘要

合成羟硅镁石粘土 Laponite RD/XLG 由盘状纳米颗粒组成,当悬浮在水介质中时会获得不同的电荷。由于其自组装的特性,Laponite 被用作各种商业水基产品的流变改性剂。特别是,Laponite 的水性分散体在约 1 体积%的浓度下经历从液体到固体的转变。分散体转变为固体状态时物理性质的演变类似于分子和胶体玻璃中的物理老化。水性 Laponite 分散体的相应软玻璃动力学,包括流变行为,在文献中已经得到了广泛的研究。在这篇专题文章中,我们概述了理解软玻璃动力学的最新进展以及为理解特殊流变行为所做的各种努力。此外,负责最终形成软固状态的连续发展的微观结构,该状态能够承受自身重力,这也是激烈争论和讨论的主题。特别是,广泛的实验和理论研究导致了该系统的两种微观结构:有吸引力的凝胶状或有排斥力的玻璃状结构。我们仔细检查和批判性地分析了文献,并提出了一个状态(相)图,表明水性 Laponite 分散体处于有吸引力的凝胶状态。

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