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Using self-assembly for the construction of nanoscale lateral-transport molecular electronic devices and microscale silicon-based networks

机译:使用自组装构建纳米级横向传输分子电子器件和基于硅的微米级网络

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Self-assembly, the spontaneous organization of parts into ordered arrays and structures, is an omnipresent process in nature. Our group explores the use of self-assembly as an engineering concept to construct functional devices across the size scale. In this paper we present two examples of self-assembly. In the first example, we show how self-assembled monolayers of anthryl phosphonic acid can be used to form a nano-scale charge conduction channel. The molecular monolayer forms on a silicon dioxide surface and is placed between two metal electrodes. We have synthesized the molecules, verified the formation of the monolayer with X-ray photoemission spectroscopy and atomic force microscopy, and characterized the lateral charge carrier transport properties of the molecules. This molecular monolayer provides a facile way for integration of a nano-scale electronic device with conventional circuitry. In the second example, we demonstrate how microfabricated components can self-assemble into an electrical network. We have developed a microfabrication process for parallel production of 100 μm hexagonal silicon parts each carrying a portion of an electrical network. We functionalize the parts either with a low-melting point alloy or with a polymer and allow for their self-assembly into an ordered lattice at an air-water interface due to capillary forces.
机译:自组装是将零件自然地组织成有序的阵列和结构,这是自然界中无所不在的过程。我们的小组探索使用自组装作为工程概念来构建整个规模的功能设备。在本文中,我们提供了两个自组装示例。在第一个示例中,我们显示了蒽膦酸的自组装单分子膜如何可用于形成纳米级电荷传导通道。分子单层在二氧化硅表面上形成并置于两个金属电极之间。我们已经合成了分子,通过X射线光电子能谱和原子力显微镜验证了单层的形成,并表征了分子的横向载流子传输性质。该分子单层为纳米级电子设备与常规电路的集成提供了一种简便的方法。在第二个示例中,我们演示了微细加工的组件如何自组装成电网。我们已经开发出一种微细加工工艺,可以并行生产100μm的六角形硅部件,每个部件都带有一部分电网。我们用低熔点合金或聚合物对零件进行功能化,并由于毛细作用力使它们在空气-水界面处自组装成有序晶格。

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