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二维空间中具有振动斑点粒子的 Kagome 晶格、缠结网络和线性纤维的自组装。

Self-assembly of kagome lattices, entangled webs and linear fibers with vibrating patchy particles in two dimensions.

作者信息

Chapela Gustavo A, Guzmán Orlando, Martínez-González José Adrián, Díaz-Leyva Pedro, Quintana-H Jacqueline

机构信息

Departamento de Física, Universidad Autónoma Metropolitana-Iztapalapa, Av. San Rafael Atlixco 186, Col. Vicentina, 09340 México, D.F., Mexico.

出版信息

Soft Matter. 2014 Dec 7;10(45):9167-76. doi: 10.1039/c4sm01818d. Epub 2014 Oct 16.

Abstract

A vibrating version of patchy particles in two dimensions is introduced to study self-assembly of kagome lattices, disordered networks of looping structures, and linear arrays. Discontinuous molecular dynamics simulations in the canonical ensemble are used to characterize the molecular architectures and thermodynamic conditions that result in each of those morphologies, as well as the time evolution of lattice formation. Several versions of the new model are tested and analysed in terms of their ability to produce kagome lattices. Due to molecular flexibility, particles with just attractive sites adopt a polarized-like configuration and assemble into linear arrays. Particles with additional repulsive sites are able to form kagome lattices, but at low temperature connect as entangled webs. Abundance of hexagonal motifs, required for the kagome lattice, is promoted even for very small repulsive sites but hindered when the attractive range is large. Differences in behavior between the new flexible model and previous ones based on rigid bodies offer opportunities to test and develop theories about the relative stability, kinetics of formation and mechanical response of the observed morphologies.

摘要

引入二维振动版的斑块状粒子来研究 kagome 晶格、环状结构的无序网络和线性阵列的自组装。在正则系综中进行的非连续分子动力学模拟用于表征导致每种形态的分子结构和热力学条件,以及晶格形成的时间演化。根据新模型生成 kagome 晶格的能力对其几个版本进行了测试和分析。由于分子的柔韧性,仅具有吸引位点的粒子会采用类似极化的构型并组装成线性阵列。具有额外排斥位点的粒子能够形成 kagome 晶格,但在低温下会连接成缠结的网络。即使对于非常小的排斥位点,kagome 晶格所需的大量六边形图案也会得到促进,但当吸引范围较大时则会受到阻碍。新的柔性模型与以前基于刚体的模型之间行为上的差异为测试和发展关于所观察形态的相对稳定性、形成动力学和力学响应的理论提供了机会。

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