State Key Laboratory of Physical Chemistry of Solid Surfaces and LIA CNRS XiamENS NanoBioChem, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, Fujian, China.
Chemphyschem. 2010 Sep 10;11(13):2745-55. doi: 10.1002/cphc.201000284.
Atomic wires (point contacts) and molecular junctions are two fundamental units in the fields of nanoelectronics and devices. This Minireview introduces our recent approaches aiming to develop versatile methods to fabricate and characterize these unique metallic and molecular structures reliably. Electrochemical methods are coupled with mechanically controllable break junction (EC-MCBJ) or scanning tunneling microscopy (STM) break junction (EC-STMBJ) methods to fabricate metallic point contacts and metal/molecule/metal junctions. With the designed electrodeposition method, the metal of interest (e.g. Au, Cu, Fe or Pd) is deposited in a controlled way on the original electrode pair, on a chip for MCBJ or on the STM tip, to make the metallic contact. Then, various metal atomic wires and molecular junctions can be fabricated and characterized systematically. Herein, we measured the quantized conductance through the construction of histograms of these metal atomic point contacts and of single molecules including benzene-1,4-dithiol (BDT), ferrocene-bisvinylphenylmethyl dithiol (Fc-VPM), 4,4'-bipyridine (BPY), 1,2-di(pyridin-4-yl)ethene (BPY-EE), and 1,2-di(pyridin-4-yl)ethane (BPY-EA). Finally, we briefly discussed the future of EC-MCBJ and EC-STM for nanoelectronics and devices, for example, for the formation of heterogeneous metal-based atomic point contacts and molecular junctions.
原子线(点接触)和分子结是纳米电子学和器件领域的两个基本单元。这篇综述介绍了我们最近的方法,旨在开发可靠的通用方法来制造和表征这些独特的金属和分子结构。电化学方法与机械可控的断裂结(EC-MCBJ)或扫描隧道显微镜(STM)断裂结(EC-STMBJ)方法相结合,用于制造金属点接触和金属/分子/金属结。通过设计的电沉积方法,以受控的方式将感兴趣的金属(例如 Au、Cu、Fe 或 Pd)沉积在原始电极对、MCBJ 芯片或 STM 尖端上,以形成金属接触。然后,可以系统地制造和表征各种金属原子线和分子结。在此,我们通过构建这些金属原子点接触和包括苯-1,4-二硫醇(BDT)、二茂铁-双乙烯基苯基甲基二硫醇(Fc-VPM)、4,4'-联吡啶(BPY)、1,2-二(吡啶-4-基)乙烯(BPY-EE)和 1,2-二(吡啶-4-基)乙烷(BPY-EA)在内的单个分子的直方图来测量量子电导。最后,我们简要讨论了 EC-MCBJ 和 EC-STM 在纳米电子学和器件方面的未来,例如用于形成异质金属基原子点接触和分子结。