Department of Chemistry, Columbia University, New York, NY, USA.
Phys Chem Chem Phys. 2012 Oct 28;14(40):13841-5. doi: 10.1039/c2cp41578j. Epub 2012 Jul 31.
We characterize electron transport across Au-molecule-Au junctions of heterogeneous carboxyl and methyl sulfide terminated saturated and conjugated molecules. Low-bias conductance measurements are performed using the scanning tunneling microscopy based break-junction technique in the presence of solvents and at room temperature. For a series of alkanes with 1-4 carbon atoms in the hydrocarbon chain, our results show an exponential decrease in conductance with increasing molecule length characterized by a decay constant of 0.9 ± 0.1 per methylene group. Control measurements in pH 11 solutions and with COOMe terminations suggest that the carboxylic acid group binds through the formation of a COO(-)-Au bond. Simultaneous measurements of conductance and force across these junctions yield a rupture force of 0.6 ± 0.1 nN, comparable to that required to rupture a Au-SMe bond. By establishing reliable, in situ junction formation, these experiments provide a new approach to probe electronic properties of carboxyl groups at the single molecule level.
我们描述了不同的羧基和甲基硫醇端饱和和共轭分子的 Au-分子-Au 结的电子输运。在存在溶剂和室温的情况下,使用基于扫描隧道显微镜的断键技术进行低偏压电导测量。对于一系列具有 1-4 个碳原子的烷烃,我们的结果表明,电导随分子长度的增加呈指数下降,其特征是每个亚甲基组的衰减常数为 0.9±0.1。在 pH 11 溶液中和使用 COOMe 端基的对照测量表明,羧酸基团通过形成 COO(-)-Au 键结合。通过对这些结进行电导和力的同时测量,得到的断裂力为 0.6±0.1 nN,与断裂 Au-SMe 键所需的力相当。通过建立可靠的原位结形成,这些实验提供了一种在单分子水平上探测羧基电子性质的新方法。