Wu Songmei, González Maria Teresa, Huber Roman, Grunder Sergio, Mayor Marcel, Schönenberger Christian, Calame Michel
Department of Physics, University of Basel, Klingelbergstrasse. 82, CH-4056 Basel, Switzerland.
Nat Nanotechnol. 2008 Sep;3(9):569-74. doi: 10.1038/nnano.2008.237. Epub 2008 Aug 17.
If individual molecules are to be used as building blocks for electronic devices, it will be essential to understand charge transport at the level of single molecules. Most existing experiments rely on the synthesis of functional rod-like molecules with chemical linker groups at both ends to provide strong, covalent anchoring to the source and drain contacts. This approach has proved very successful, providing quantitative measures of single-molecule conductance, and demonstrating rectification and switching at the single-molecule level. However, the influence of intermolecular interactions on the formation and operation of molecular junctions has been overlooked. Here we report the use of oligo-phenylene ethynylene molecules as a model system, and establish that molecular junctions can still form when one of the chemical linker groups is displaced or even fully removed. Our results demonstrate that aromatic pi-pi coupling between adjacent molecules is efficient enough to allow for the controlled formation of molecular bridges between nearby electrodes.
如果要将单个分子用作电子器件的构建单元,那么了解单分子水平上的电荷传输将至关重要。大多数现有实验依赖于合成两端带有化学连接基团的功能性棒状分子,以便与源极和漏极接触进行强共价锚定。这种方法已被证明非常成功,提供了单分子电导的定量测量,并在单分子水平上展示了整流和开关特性。然而,分子间相互作用对分子结形成和运作的影响一直被忽视。在此,我们报告使用寡聚亚苯基乙炔分子作为模型系统,并确定当其中一个化学连接基团被取代甚至完全去除时,分子结仍然可以形成。我们的结果表明,相邻分子之间的芳香π-π耦合效率足以允许在附近电极之间可控地形成分子桥。