Schenning Albertus P H J, Meijer E W
Laboratory of Macromolecular and Organic Chemistry, Eindhoven University of Technology, P. O. Box 513, 5600 MB, Eindhoven, The Netherlands.
Chem Commun (Camb). 2005 Jul 14(26):3245-58. doi: 10.1039/b501804h. Epub 2005 Apr 13.
The conditions required for supramolecular electronics, e.g. nano-sized optoelectronic devices, will be illustrated on the basis of the programmed self-assembly of pi-conjugated systems into individual nanosized wires. Using the supramolecular design rules nanowires can be created from almost any polymeric and oligomeric pi-conjugated system. In the case of oligomers it is even possible to construct individual wires having a uniform diameter of one molecule thickness. The construction of wires on a substrate is possible by self-assembly in solution or during the deposition. The transfer of the supramolecular stacks from solution to a solid support is a very delicate process. A comprehensive knowledge of all intermolecular interactions gives rise to controlled transfer of pi-conjugated assemblies to specific surfaces. There are a large number of very appealing targets that should be reached before supramolecular electronics can serve as an attractive alternative in between single molecule electronics and bulk devices. Nevertheless, the combination of exciting scientific results and intriguing technological challenges creates an interesting future for supramolecular electronics.
超分子电子学所需的条件,例如纳米级光电器件,将基于π共轭体系的程序化自组装成单个纳米线来进行说明。利用超分子设计规则,几乎可以从任何聚合和低聚π共轭体系创建纳米线。对于低聚物,甚至有可能构建直径均匀为一个分子厚度的单个导线。通过在溶液中或沉积过程中的自组装,可以在基板上构建导线。将超分子堆叠从溶液转移到固体支持物是一个非常精细的过程。对所有分子间相互作用的全面了解导致π共轭组件可控地转移到特定表面。在超分子电子学能够成为单分子电子学和块状器件之间有吸引力的替代方案之前,还有大量非常吸引人的目标需要实现。尽管如此,令人兴奋的科学成果和引人入胜的技术挑战的结合为超分子电子学创造了一个有趣的未来。