Department of Physical Chemistry, Fritz-Haber-Institute of the Max-Planck-Society, 14195 Berlin, Germany.
Nat Chem. 2012 Jan 15;4(3):215-20. doi: 10.1038/nchem.1242.
A key challenge in the field of nanotechnology, in particular in the design of molecular machines, novel materials or molecular electronics, is the bottom-up construction of covalently bound molecular architectures in a well-defined arrangement. To date, only rather simple structures have been obtained because of the limitation of one-step connection processes. Indeed, for the formation of sophisticated structures, step-by-step connection of molecules is required. Here, we present a strategy for the covalent connection of molecules in a hierarchical manner by the selective and sequential activation of specific sites, thereby generating species with a programmed reactivity. This approach leads to improved network quality and enables the fabrication of heterogeneous architectures with high selectivity. Furthermore, substrate-directed growth and a preferred orientation of the molecular nanostructures are achieved on an anisotropic surface. The demonstrated control over reactivity and diffusion during covalent bond formation constitutes a promising route towards the creation of sophisticated multi-component molecular nanostructures.
在纳米技术领域,特别是在设计分子机器、新型材料或分子电子学方面,一个关键的挑战是在明确的排列中自下而上构建共价键合的分子结构。迄今为止,由于一步连接过程的限制,只能获得相当简单的结构。事实上,对于复杂结构的形成,需要分子的逐步连接。在这里,我们提出了一种通过选择性和顺序激活特定位点来实现分子共价连接的分级策略,从而生成具有可编程反应性的物质。这种方法可以提高网络质量,并能够以高选择性制造异质结构。此外,在各向异性表面上实现了分子纳米结构的底物导向生长和优先取向。在共价键形成过程中对反应性和扩散的控制为创建复杂的多组分分子纳米结构提供了一条很有前途的途径。