Department of Chemistry, Columbia University, New York, New York 10027, United States.
J Am Chem Soc. 2012 Dec 19;134(50):20440-5. doi: 10.1021/ja308626m. Epub 2012 Dec 4.
We study the effects of molecular structure on the electronic transport and mechanical stability of single-molecule junctions formed with Au point contacts. Two types of linear conjugated molecular wires are compared: those functionalized with methylsulfide or amine aurophilic groups at (1) both or (2) only one of its phenyl termini. Using scanning tunneling and atomic force microscope break-junction techniques, the conductance of mono- and difunctionalized molecular wires and its dependence on junction elongation and rupture forces were studied. Charge transport through monofunctionalized wires is observed when the molecular bridge is coupled through a S-Au donor-acceptor bond on one end and a relatively weak Au-π interaction on the other end. For monofunctionalized molecular wires, junctions can be mechanically stabilized by installing a second aurophilic group at the meta position that, however, does not in itself contribute to a new conduction pathway. These results reveal the important interplay between electronic coupling through metal-π interactions and quantum mechanical effects introduced by chemical substitution on the conjugated system. This study affords a strategy to deterministically tune the electrical and mechanical properties through molecular wires.
我们研究了分子结构对通过 Au 点接触形成的单分子结的电子输运和机械稳定性的影响。比较了两种类型的线性共轭分子线:一种在其两个苯端基处都(1)或仅(2)一个位置上用甲基硫醇或胺金亲核基团官能化。使用扫描隧道显微镜和原子力显微镜断键技术,研究了单官能化和双官能化分子线的电导及其对结伸长和断裂力的依赖性。当分子桥通过一端的 S-Au 供体-受体键和另一端的相对较弱的 Au-π 相互作用耦合时,观察到单官能化分子线中的电荷传输。对于单官能化分子线,通过在间位安装第二个金亲核基团可以机械稳定结,但它本身并不能贡献新的传导途径。这些结果揭示了通过金属-π 相互作用的电子耦合与共轭体系上的化学取代引入的量子力学效应之间的重要相互作用。这项研究提供了一种通过分子线确定性地调节电和机械性质的策略。