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雪人型 Janus 纳米粒子组装中几何形状的影响。

Influence of Geometries on the Assembly of Snowman-Shaped Janus Nanoparticles.

机构信息

Institute of Chemistry and Biotechnology , Zurich University of Applied Sciences , Einsiedlerstrasse 31 , 8820 Waedenswil , Switzerland.

出版信息

ACS Nano. 2018 Apr 24;12(4):3741-3750. doi: 10.1021/acsnano.8b00960. Epub 2018 Mar 7.

Abstract

The self-assembly of micro/nanoparticles into suprastructures is a promising way to develop reconfigurable materials and to gain insights into the fundamental question of how matter organizes itself. The geometry of particles, especially those deviating from perfectly spherical shapes, is of significant importance in colloidal assembly because it influences the particle "recognition", determines the particle packing, and ultimately dictates the formation of assembled suprastructures. In order to organize particles into desired structures, it is of vital importance to understand the relationship between the shape of the colloidal building blocks and the assembled suprastructures. This fundamental issue is an enduring topic in the assembly of molecular surfactants, but it remained elusive in colloidal assembly. To address this issue, we use snowman-shaped Janus nanoparticles (JNPs) as a model to systematically study the effect of colloidal geometries on their assembled suprastructures. Ten types of JNPs with identical chemical compositions but with different geometries were synthesized. Specifically, the synthesized JNPs differ in their lobe size ratios, phase separation degrees, and overall sizes. We show that by altering these parameters, both finite suprastructures, such as capsules with different curvatures, and nonfinite suprastructures, including free-standing single-layered or double-layered JNPs sheets, can be obtained via self-assembly. All these different types of suprastructures are constituted by highly oriented and hexagonally packed JNPs. These findings demonstrate the significance of geometries in colloidal assembly, such that slightly changing the building block geometries could result in a large variety of very different assembled structures, without altering the chemistry of the particles.

摘要

微粒/纳料自组装为超结构是一种很有前途的方法,可以开发可重构材料,并深入了解物质如何自我组织这一基本问题。在胶体组装中,粒子的几何形状,尤其是那些偏离完美球形的形状,具有重要意义,因为它影响着粒子的“识别”,决定了粒子的堆积方式,最终决定了组装超结构的形成。为了将粒子组织成所需的结构,了解胶体构建块的形状与组装的超结构之间的关系至关重要。这个基本问题是分子表面活性剂组装中的一个持久话题,但在胶体组装中仍然难以捉摸。为了解决这个问题,我们使用雪人形状的 Janus 纳米粒子(JNPs)作为模型,系统地研究胶体几何形状对其组装超结构的影响。我们合成了十种具有相同化学组成但具有不同几何形状的 JNP。具体来说,合成的 JNP 在叶瓣大小比、相分离程度和整体尺寸上有所不同。我们表明,通过改变这些参数,可以通过自组装获得具有不同曲率的胶囊等有限超结构,以及独立的单层或双层 JNP 片等非有限超结构。所有这些不同类型的超结构都是由高度取向和六边形堆积的 JNP 组成的。这些发现表明了几何形状在胶体组装中的重要性,即稍微改变构建块的几何形状就可以得到各种非常不同的组装结构,而无需改变粒子的化学性质。

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