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Using symmetry to elucidate the importance of stoichiometry in colloidal crystal assembly

机译:使用对称性阐明化学计量在胶体晶体组装中的重要性

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摘要

We demonstrate a method based on symmetry to predict the structure of self-assembling, multicomponent colloidal mixtures. This method allows us to feasibly enumerate candidate structures from all symmetry groups and is many orders of magnitude more computationally efficient than combinatorial enumeration of these candidates. In turn, this permits us to compute ground-state phase diagrams for multicomponent systems. While tuning the interparticle potentials to produce potentially complex interactions represents the conventional route to designing exotic lattices, we use this scheme to demonstrate that simple potentials can also give rise to such structures which are thermodynamically stable at moderate to low temperatures. Furthermore, for a model two-dimensional colloidal system, we illustrate that lattices forming a complete set of 2-, 3-, 4-, and 6-fold rotational symmetries can be rationally designed from certain systems by tuning the mixture composition alone, demonstrating that stoichiometric control can be a tool as powerful as directly tuning the interparticle potentials themselves.
机译:我们展示了一种基于对称性的方法来预测自组装,多组分胶体混合物的结构。这种方法使我们能够从所有对称组中枚举候选结构,并且比这些枚举的组合枚举在计算效率上高出多个数量级。反过来,这使我们能够计算多组分系统的基态相位图。虽然调节粒子间的电势以产生潜在的复杂相互作用代表了设计奇异晶格的常规途径,但我们使用此方案证明了简单的电势也可以产生在中至低温下热力学稳定的结构。此外,对于模型二维胶体系统,我们说明了可以从某些系统中合理地设计出形成完整的2,3,4和6倍旋转对称度的晶格,方法是单独调整混合物的组成,这表明化学计量控制可以像直接调整粒子间电位本身一样强大。

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