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快速大规模组装和一维金纳米棒超结构的图案转移。

Rapid Large-Scale Assembly and Pattern Transfer of One-Dimensional Gold Nanorod Superstructures.

机构信息

Center for Neutron Research, National Institute of Standards and Technology (NIST) , Gaithersburg, Maryland 20899, United States.

Materials Science and Engineering Department, University of Maryland , College Park, Maryland 20742, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Aug 2;9(30):25513-25521. doi: 10.1021/acsami.7b06273. Epub 2017 Jul 19.

Abstract

The utility of gold nanorods for plasmonic applications largely depends on the relative orientation and proximity of the nanorods. Though side-by-side or chainlike nanorod morphologies have been previously demonstrated, a simple reliable method to obtain high-yield oriented gold nanorod assemblies remains a significant challenge. We present a facile, scalable approach which exploits meniscus drag, evaporative self-assembly, and van der Waals interactions to precisely position and orient gold nanorods over macroscopic areas of 1D nanostructured substrates. By adjusting the ratio of the nanorod diameter to the width of the nanochannels, we demonstrate the formation of two highly desired translationally ordered nanorod patterns. We further demonstrate a method to transfer the aligned nanorods into a polymer matrix which exhibits anisotropic optical properties, allowing for rapid fabrication and deployment of flexible optical and electronic materials in future nanoscale devices.

摘要

金纳米棒在等离子体应用中的实用性在很大程度上取决于纳米棒的相对取向和接近程度。虽然已经有了并排或链状纳米棒形态的先前演示,但获得高产取向金纳米棒组装体的简单可靠方法仍然是一个重大挑战。我们提出了一种简便、可扩展的方法,利用界面拖拽、蒸发自组装和范德华相互作用在一维纳米结构基底的宏观区域上精确定位和取向金纳米棒。通过调整纳米棒直径与纳米通道宽度的比例,我们展示了两种高度需要的平移有序纳米棒图案的形成。我们进一步展示了一种将对齐的纳米棒转移到聚合物基质中的方法,该方法具有各向异性的光学性质,允许在未来的纳米尺度器件中快速制造和部署灵活的光学和电子材料。

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