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重新审视微凝胶颗粒之间的有效相互作用。

A new look at effective interactions between microgel particles.

机构信息

Division of Physical Chemistry, Department of Chemistry, Lund University, PO Box 124, SE-22100, Lund, Sweden.

CNR-ISC and Department of Physics, Sapienza University of Rome, Piazzale A. Moro 2, 00185, Roma, Italy.

出版信息

Nat Commun. 2018 Nov 28;9(1):5039. doi: 10.1038/s41467-018-07332-5.

Abstract

Thermoresponsive microgels find widespread use as colloidal model systems, because their temperature-dependent size allows facile tuning of their volume fraction in situ. However, an interaction potential unifying their behavior across the entire phase diagram is sorely lacking. Here we investigate microgel suspensions in the fluid regime at different volume fractions and temperatures, and in the presence of another population of small microgels, combining confocal microscopy experiments and numerical simulations. We find that effective interactions between microgels are clearly temperature dependent. In addition, microgel mixtures possess an enhanced stability compared to hard colloid mixtures - a property not predicted by a simple Hertzian model. Based on numerical calculations we propose a multi-Hertzian model, which reproduces the experimental behavior for all studied conditions. Our findings highlight that effective interactions between microgels are much more complex than usually assumed, displaying a crucial dependence on temperature and on the internal core-corona architecture of the particles.

摘要

温敏性微凝胶作为胶体模型系统得到了广泛的应用,因为它们的温度依赖性尺寸使得可以方便地原位调节其体积分数。然而,在整个相图中统一它们行为的相互作用势却严重缺乏。在这里,我们研究了不同体积分数和温度下的流体状态下的微凝胶悬浮液,以及在存在另一群小微凝胶的情况下,结合共焦显微镜实验和数值模拟。我们发现微凝胶之间的有效相互作用明显随温度而变化。此外,与硬胶体混合物相比,微凝胶混合物具有增强的稳定性——这一特性不能用简单的赫兹模型来预测。基于数值计算,我们提出了一个多赫兹模型,该模型可以重现所有研究条件下的实验行为。我们的发现强调了微凝胶之间的有效相互作用比通常假设的要复杂得多,它们对温度和粒子的内部核-壳结构有很大的依赖性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f14f/6262015/386c416fc07f/41467_2018_7332_Fig1_HTML.jpg

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