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聚合物接枝纳米立方体在液-液界面的可调取向与组装

Tunable Orientation and Assembly of Polymer-Grafted Nanocubes at Fluid-Fluid Interfaces.

作者信息

Zhou Yilong, Tang Tsung-Yeh, Lee Brian Hyun-Jong, Arya Gaurav

机构信息

Department of Mechanical Engineering and Materials Science, Duke University, Durham, North Carolina 27708, United States.

Department of NanoEngineering, University of California, San Diego, La Jolla, California 92093, United States.

出版信息

ACS Nano. 2022 May 24;16(5):7457-7470. doi: 10.1021/acsnano.1c10416. Epub 2022 Apr 22.

Abstract

Self-assembly of faceted nanoparticles is a promising route for fabricating nanomaterials; however, achieving low-dimensional assemblies of particles with tunable orientations is challenging. Here, we demonstrate that trapping surface-functionalized faceted nanoparticles at fluid-fluid interfaces is a viable approach for controlling particle orientation and facilitating their assembly into unique one- and two-dimensional superstructures. Using molecular dynamics simulations of polymer-grafted nanocubes in a polymer bilayer along with a particle-orientation classification method we developed, we show that the nanocubes can be induced into face-up, edge-up, or vertex-up orientations by tuning the graft density and differences in their miscibility with the two polymer layers. The orientational preference of the nanocubes is found to be governed by an interplay between the interfacial area occluded by the particle, the difference in interactions of the grafts with the two layers, and the stretching and intercalation of grafts at the interface. The resulting orientationally constrained nanocubes are then shown to assemble into a variety of unusual architectures, such as rectilinear strings, close-packed sheets, bilayer ribbons, and perforated sheets, which are difficult to obtain using other assembly methods. Our work thus demonstrates a versatile strategy for assembling freestanding arrays of faceted nanoparticles with possible applications in plasmonics, optics, catalysis, and membranes, where precise control over particle orientation and position is required.

摘要

多面体纳米粒子的自组装是制备纳米材料的一种有前景的途径;然而,实现具有可调取向的低维粒子组装具有挑战性。在这里,我们证明将表面功能化的多面体纳米粒子捕获在流体 - 流体界面是控制粒子取向并促进其组装成独特的一维和二维超结构的可行方法。通过对聚合物双层中聚合物接枝纳米立方体进行分子动力学模拟,并结合我们开发的粒子取向分类方法,我们表明通过调整接枝密度以及它们与两个聚合物层的混溶性差异,可以使纳米立方体呈现面朝上、边缘朝上或顶点朝上的取向。发现纳米立方体的取向偏好受粒子遮挡的界面面积、接枝与两层相互作用的差异以及接枝在界面处的拉伸和嵌入之间的相互作用支配。然后,这些取向受限的纳米立方体被证明可以组装成各种不寻常的结构,如直线状链、密堆积片、双层带和穿孔片,而使用其他组装方法很难获得这些结构。因此,我们的工作展示了一种通用策略,用于组装多面体纳米粒子的独立阵列,并在等离子体学、光学、催化和膜等领域具有潜在应用,这些领域需要对粒子取向和位置进行精确控制。

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