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悬浮液中两亲性立方体的自组装

Self-Assembly of Amphiphilic Cubes in Suspension.

作者信息

Kobayashi Yusei, Nikoubashman Arash

机构信息

Department of Mechanical Engineering, Keio University, 223-8522 Yokohama, Japan.

Institute of Physics, Johannes Gutenberg University Mainz, Staudingerweg 7, 55128 Mainz, Germany.

出版信息

Langmuir. 2022 Aug 30;38(34):10642-10648. doi: 10.1021/acs.langmuir.2c01614. Epub 2022 Aug 16.

Abstract

We study the self-assembly of amphiphilic cubic colloids using molecular dynamics as well as rejection-free kinetic Monte Carlo simulations. We vary both the number and location of the solvophobic faces (patches) on the cubes at several colloid volume fractions and determine the resulting size and shape distributions of the self-assembled aggregates. When the binding energy is comparable to the thermal energy of the system, aggregates typically consist of only few spontaneously associating/dissociating colloids. Increasing the binding energy (or lowering the temperature) leads to the emergence of highly stable aggregates, e.g., small dimers in pure suspensions of one-patch cubes or large (system-spanning) aggregates in suspensions of multipatch colloids. In mixtures of one- and multipatch cubes, the average aggregation number increases with increasing number of solvophobic faces on the multipatch cubes as well with increasing fraction of multipatch cubes. The resulting aggregate shapes range from elongated rods over fractal objects to compact spheres, depending on the number and arrangement of solvophobic patches on the cubic colloids. Our findings establish the complex self-assembly pathways for a class of building blocks that combine both interaction and shape anisotropy, with the potential of forming hierarchically ordered superstructures.

摘要

我们使用分子动力学以及无拒绝动力学蒙特卡罗模拟研究两亲性立方胶体的自组装。我们在几个胶体体积分数下改变立方体上疏溶剂面(斑块)的数量和位置,并确定自组装聚集体的最终尺寸和形状分布。当结合能与系统的热能相当时,聚集体通常仅由少数自发缔合/解离的胶体组成。增加结合能(或降低温度)会导致出现高度稳定的聚集体,例如在单斑块立方体的纯悬浮液中形成小的二聚体,或在多斑块胶体的悬浮液中形成大的(跨越系统的)聚集体。在单斑块和多斑块立方体的混合物中,平均聚集数随着多斑块立方体上疏溶剂面数量的增加以及多斑块立方体比例的增加而增加。根据立方胶体上疏溶剂斑块的数量和排列,形成的聚集体形状范围从细长棒状到分形物体再到紧凑球体。我们的研究结果为一类结合了相互作用和形状各向异性的构建块建立了复杂的自组装途径,具有形成层次有序超结构的潜力。

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