【2h】

Arrested demixing opens route to bigels

机译:被捕的混音打开了通往Bigels的道路

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摘要

Understanding and, ultimately, controlling the properties of amorphous materials is one of the key goals of material science. Among the different amorphous structures, a very important role is played by colloidal gels. It has been only recently understood that colloidal gels are the result of the interplay between phase separation and arrest. When short-ranged attractive colloids are quenched into the phase-separating region, density fluctuations are arrested and this results in ramified amorphous space-spanning structures that are capable of sustaining mechanical stress. We present a mechanism of aggregation through arrested demixing in binary colloidal mixtures, which leads to the formation of a yet unexplored class of materials––bigels. This material is obtained by tuning interspecies interactions. Using a computer model, we investigate the phase behavior and the structural properties of these bigels. We show the topological similarities and the geometrical differences between these binary, interpenetrating, arrested structures and their well-known monodisperse counterparts, colloidal gels. Our findings are supported by confocal microscopy experiments performed on mixtures of DNA-coated colloids. The mechanism of bigel formation is a generalization of arrested phase separation and is therefore universal.
机译:了解并最终控制非晶态材料的性能是材料科学的关键目标之一。在不同的无定形结构中,胶体凝胶起着非常重要的作用。直到最近才知道,胶体凝胶是相分离和阻滞之间相互作用的结果。当短程吸引胶体淬灭进入相分离区域时,密度波动将被阻止,这将导致分枝的无定形空间跨度结构能够承受机械应力。我们提出了一种通过阻止二元胶体混合物中的混合来聚集的机制,这导致形成了尚未探索的一类材料-胶结物。该材料是通过调整种间相互作用获得的。使用计算机模型,我们研究了这些双相的相行为和结构特性。我们显示了这些二元,互穿,停滞的结构与它们众所周知的单分散对应物胶体凝胶之间的拓扑相似性和几何差异。我们的发现得到了共聚焦显微镜实验的支持,该实验是对涂有DNA的胶体混合物进行的。双峰形成的机理是阻止相分离的一般化,因此是普遍的。

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