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Insulated molecular wires : inhibiting orthogonal contacts in metal complex based molecular junctions.

机译:绝缘的分子线:抑制基于金属配合物的分子结中的正交接触。

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摘要

Metal complexes are receiving increased attention as molecular wires in fundamental studies of the transport properties of metal|molecule|metal junctions. In this context we report the single-molecule conductance of a systematic series of d8 square-planar platinum(II) trans-bis(alkynyl) complexes with terminal trimethylsilylethynyl (C[triple bond, length as m-dash]CSiMe3) contacting groups, e.g. trans-Pt{C[triple bond, length as m-dash]CC6H4C[triple bond, length as m-dash]CSiMe3}2(PR3)2 (R = Ph or Et), using a combination of scanning tunneling microscopy (STM) experiments in solution and theoretical calculations using density functional theory and non-equilibrium Green's function formalism. The measured conductance values of the complexes (ca. 3–5 × 10−5G0) are commensurate with similarly structured all-organic oligo(phenylene ethynylene) and oligo(yne) compounds. Based on conductance and break-off distance data, we demonstrate that a PPh3 supporting ligand in the platinum complexes can provide an alternative contact point for the STM tip in the molecular junctions, orthogonal to the terminal C[triple bond, length as m-dash]CSiMe3 group. The attachment of hexyloxy side chains to the diethynylbenzene ligands, e.g. trans-Pt{C[triple bond, length as m-dash]CC6H2(Ohex)2C[triple bond, length as m-dash]CSiMe3}2(PPh3)2 (Ohex = OC6H13), hinders contact of the STM tip to the PPh3 groups and effectively insulates the molecule, allowing the conductance through the full length of the backbone to be reliably measured. The use of trialkylphosphine (PEt3), rather than triarylphosphine (PPh3), ancillary ligands at platinum also eliminates these orthogonal contacts. These results have significant implications for the future design of organometallic complexes for studies in molecular junctions.
机译:在金属结的传输性质的基础研究中,金属络合物作为分子线受到越来越多的关注。在此情况下,我们报告了一系列系统的d8方形平面铂(II)反式双(炔基)配合物与末端三甲基甲硅烷基乙炔基(C [三键,长度为m-CSiMe3]接触)的单分子电导,例如使用扫描隧道显微镜(STM)的结合,反式Pt {CC三键,长度为m-点CC6H4CC三键,长度为m-点CSiMe3} 2(PR3)2(R = Ph或Et) )使用密度泛函理论和非平衡格林函数形式主义进行溶液和理论计算实验。配合物的电导值(约3-5×10-5G0)与结构相似的全有机低聚(亚苯基乙炔基)和低聚(炔)化合物相当。根据电导和断开距离数据,我们证明铂络合物中支持PPh3的配体可以为分子末端的STM尖端提供一个替代的接触点,正交于末端C [三键,长度为m-dash ] CSiMe3组。己氧基侧链与二乙炔基苯配体的连接,例如反式Pt {C [三键,长度为m-点] CC6H2(Ohex)2C [三键,长度为m-点CSiMe3} 2(PPh3)2(Ohex = OC6H13),阻碍STM尖端与PPh3基团可以有效地使分子绝缘,从而可以可靠地测量整个骨架的电导。在铂上使用辅助配体的三烷基膦(PEt3)而不是三芳基膦(PPh3),也消除了这些正交接触。这些结果对分子结研究中有机金属配合物的未来设计具有重要意义。

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