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Inverse Design of Colloidal Crystals via Optimized Patchy Interactions

机译:通过优化的斑块相互作用逆设计胶体晶体

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摘要

Inverse statistical mechanics is a powerful optimization methodology that has been widely applied to design optimal isotropic pair interactions that robustly yield a broad spectrum of target many-particle configurations or physical properties. In this work, we generalize inverse techniques to design experimentally realizable spherical colloidal particles with optimized "patchy" anisotropic interactions for a wide class of targeted low-coordinated two-dimensional crystal structures that are defect-free. Our target crystals include square, honeycomb, kagome, and parallelogrammic crystals. The square, honeycomb, and kagome crystals possess desirable photonic, phononic, and magnetic properties, which are useful for a wide range of applications. We demonstrate that these target configurations can be robustly achieved with relatively few defects at sufficiently low temperatures. Our findings provide experimentalists with the optimal parameters to synthesize these crystals with patchy colloids under standard laboratory conditions.
机译:逆统计力学是一种强大的优化方法,它已被广泛应用于设计最佳的各向同性对相互作用,其强大地产生广谱的靶粒子配置或物理性质。在这项工作中,我们概括了设计实验可实现的球形胶体颗粒的逆技术,其针对缺陷的靶向低协调的二维晶体结构进行了优化的“斑块”各向异性相互作用。我们的靶晶体包括正方形,蜂窝,kagome和平行四边形晶体。方形,蜂窝和kagome晶体具有所需的光子,声孔和磁性,可用于各种应用。我们证明可以在足够低温下的缺陷相对较少的缺陷来稳健地实现这些目标配置。我们的调查结果提供了具有最佳参数的实验者,在标准实验室条件下用斑块胶体合成这些晶体。

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