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由小有机分子纳米线构成的大面积多孔薄膜的多色发射。

Multicolor emission from large-area porous thin films constructed of nanowires of small organic molecules.

作者信息

Wang Zhe-Chen, Xiao Wen-Chang, Ding Xun-Lei, Ma Yan-Ping, Xue Wei, He Sheng-Gui

机构信息

Beijing National Laboratory for Molecular Sciences, State Key Laboratory for Structural Chemistry of Unstable and Stable Species, Institute of Chemistry, Chinese Academy of Sciences, Zhongguancun, Haidian, Beijing 100190, People's Republic of China. Graduate School of Chinese Academy of Sciences, Beijing 100039, People's Republic of China.

出版信息

Nanotechnology. 2008 Dec 17;19(50):505703. doi: 10.1088/0957-4484/19/50/505703. Epub 2008 Nov 25.

Abstract

We describe a facile low-temperature physical vapor deposition approach to fabricate porous network thin films constructed of nanowires of small organic molecules on a large area. Supermolecular assemblies of pyrene nanowires based on a combination of van der Waals forces and pi-pi stacking tend to hierarchically self-assemble to form uniform porous films using our techniques. The morphology of the films is studied and we also study several reasons influencing the process of assembly such as evaporation temperature, deposition temperature, and different kinds of substrate. The deposition temperature is determined to be the main reason for hierarchical aggregation. Typically prepared films exhibit unique optical properties, that is, multicolor red-green-blue emissions. This novel method can be applied to other organic molecular systems and may be potentially used to place nanoscaled building blocks directly on solid surfaces for fabricating large-area nanostructure-based flat screens.

摘要

我们描述了一种简便的低温物理气相沉积方法,用于在大面积上制备由小有机分子纳米线构成的多孔网络薄膜。基于范德华力和π-π堆积相结合的芘纳米线超分子组装体倾向于使用我们的技术进行分层自组装,以形成均匀的多孔薄膜。研究了薄膜的形态,我们还研究了影响组装过程的几个因素,如蒸发温度、沉积温度和不同种类的基底。确定沉积温度是分层聚集的主要原因。典型制备的薄膜表现出独特的光学性质,即多色红-绿-蓝发射。这种新方法可以应用于其他有机分子体系,并可能潜在地用于将纳米级构建块直接放置在固体表面上,以制造大面积的基于纳米结构的平板屏幕。

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