水性 Laponite® 分散液是有吸引力的凝胶,而不是有排斥性的维格纳玻璃:批判性评论

Yogesh M Joshi, Shrajesh Patel, Khushboo Suman
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摘要

过去 30 多年来,文献中一直在研究 Laponite® 的水分散体。通常情况下,Laponite® 的水分散体的微观结构会不断演变,其弹性模量和平均松弛时间会随着时间的推移而持续增加。大量的讨论都围绕着这种分散体的性质,特别是它是否可以被归类为排斥性的维格纳玻璃态,其特点是断开的 Laponite® 颗粒在静电排斥作用下保持稳定;或者是吸引性的凝胶态,其中的颗粒形成一个渗透的空间跨度网络。维格纳玻璃态的支持者还推测,这种体系在制备两天后会发生玻璃-玻璃的转变。在这篇评论中,我们从流变学的角度探讨了这个问题,分析了已发表的文献并进行了新的实验。在更多文献证据的帮助下,我们提出流变学行为压倒性地表明,Laponite® 的水性分散体经历了溶胶吸引凝胶转变,并至少在 7 天内保持吸引凝胶状态,而不会经历任何额外的转变。重要的是,尽管流变学是一种受力学原理支配的宏观工具,但它却能让我们深入了解这一特殊系统的微观结构。相应的分析最终确定 Laponite® 水分散体的状态为吸引力凝胶。
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Aqueous Laponite® dispersions are attractive gels, not repulsive Wigner glasses: A critical commentary
An aqueous dispersion of Laponite® has been studied in the literature for over the past three decades. Typically, the aqueous dispersion of Laponite® undergoes incessant evolution of its microstructure, wherein its elastic modulus and the mean relaxation time show a continuous increase as a function of time. A considerable amount of discussion has revolved around the nature of this dispersion, specifically whether it can be classified as a repulsive Wigner glass state, characterized by disconnected Laponite® particles stabilized by electrostatic repulsions, or an attractive gel state, in which the particles form a percolated space-spanning network. The proponents of the Wigner glass state also conjecture that this system experiences a glass–glass transition after a period of 2 days has elapsed since its preparation. In this Commentary, we explore this topic from a rheological point of view, analyzing the published literature and performing new experiments. Aided by additional evidence from the literature, we propose that rheological behavior overwhelmingly suggests that an aqueous dispersion of Laponite® undergoes a sol–attractive gel transition and remains in the attractive gel state over at least up to 7 days without undergoing any additional transition. Importantly, rheology, despite being a macroscopic tool governed by principles of mechanics, offers profound insight into the microstructure of this particular system. The corresponding analysis conclusively determines the state of an aqueous dispersion of Laponite® to be an attractive gel.
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