Doud Evan A, Inkpen Michael S, Lovat Giacomo, Montes Enrique, Paley Daniel W, Steigerwald Michael L, Vázquez Héctor, Venkataraman Latha, Roy Xavier
Institute of Physics , Academy of Sciences of the Czech Republic , Cukrovarnická 10 , Prague 16200 , Czech Republic.
J Am Chem Soc. 2018 Jul 18;140(28):8944-8949. doi: 10.1021/jacs.8b05184. Epub 2018 Jul 3.
Self-assembled monolayers (SAMs) formed using N-heterocyclic carbenes (NHCs) have recently emerged as thermally and chemically ultrastable alternatives to those formed from thiols. The rich chemistry and strong σ-donating ability of NHCs offer unique prospects for applications in nanoelectronics, sensing, and electrochemistry. Although stable in SAMs, free carbenes are notoriously reactive, making their electronic characterization challenging. Here we report the first investigation of electron transport across single NHC-bound molecules using the scanning tunneling microscope-based break junction (STM-BJ) technique. We develop a series of air-stable metal NHC complexes that can be electrochemically reduced in situ to form NHC-electrode contacts, enabling reliable single-molecule conductance measurements of NHCs under ambient conditions. Using this approach, we show that the conductance of an NHC depends on the identity of the single metal atom to which it is coordinated in the junction. Our observations are supported by density functional theory (DFT) calculations, which also firmly establish the contributions of the NHC linker to the junction transport characteristics. Our work demonstrates a powerful method to probe electron transfer across NHC-electrode interfaces; more generally, it opens the door to the exploitation of surface-bound NHCs in constructing novel, functionalized electrodes and/or nanoelectronic devices.
利用氮杂环卡宾(NHCs)形成的自组装单分子层(SAMs)最近已成为由硫醇形成的单分子层在热稳定性和化学稳定性方面的超稳定替代品。NHCs丰富的化学性质和强大的σ供电子能力为纳米电子学、传感和电化学领域的应用提供了独特的前景。尽管在SAMs中稳定,但游离卡宾具有众所周知的高反应活性,这使得对其进行电子表征具有挑战性。在此,我们报告了首次使用基于扫描隧道显微镜的断结(STM-BJ)技术对单个与NHC结合的分子进行电子传输的研究。我们开发了一系列在空气中稳定的金属NHC配合物,这些配合物可以在原位进行电化学还原以形成NHC-电极接触,从而能够在环境条件下对NHCs进行可靠的单分子电导测量。使用这种方法,我们表明NHC的电导取决于其在结中配位的单个金属原子的身份。我们的观察结果得到了密度泛函理论(DFT)计算的支持,该计算也坚定地确定了NHC连接体对结传输特性的贡献。我们的工作展示了一种探测跨NHC-电极界面电子转移的强大方法;更普遍地说,它为在构建新型功能化电极和/或纳米电子器件中利用表面结合的NHCs打开了大门。