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Orbital Control of Photocurrents in Large Area All-Carbon Molecular Junctions

机译:大面积全碳分子结中光电流的轨道控制

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摘要

Photocurrents generated by illumination of carbon-based molecular junctions were investigated as diagnostics of how molecular structure and orbital energies control electronic behavior. Oligomers of eight aromatic molecules covalently bonded to an electron-beam deposited carbon surface were formed by electrochemical reduction of diazonium reagents, with layer thicknesses in the range of 5–12 nm. Illumination through either the top or bottom partially transparent electrodes produced both an open circuit potential (OCP) and a photocurrent (PC), and the polarity and spectrum of the photocurrent depended directly on the relative positions of the frontier orbitals and the electrode Fermi level ( E _(F)). Electron donors with relatively high HOMO energies yielded positive OCP and PC, and electron acceptors with LUMO energies closer to E _(F) than the HOMO energy produced negative OCP and PC. In all cases, the PC spectrum and the absorption spectrum of the oligomer in the molecular junction had very similar shapes and wavelength maxima. Asymmetry of electronic coupling at the top and bottom electrodes due to differences in bonding and contact area cause an internal potential gradient which controls PC and OCP polarities. The results provide a direct indication of which orbital energies are closest to E _(F) and also indicate that transport in molecular junctions thicker than 5 nm is controlled by the difference in energy of the HOMO and LUMO orbitals.
机译:对碳基分子结的照明产生的光电流进行了研究,以诊断分子结构和轨道能量如何控制电子行为。共价键合到电子束沉积的碳表面上的八个芳香族分子的低聚物是通过重氮试剂的电化学还原形成的,层厚在5–12 nm范围内。通过顶部或底部部分透明的电极进行照明会产生开路电势(OCP)和光电流(PC),光电流的极性和光谱直接取决于边界轨道的相对位置和电极费米能级( E _(F))。具有较高HOMO能量的电子供体产生正的OCP和PC,具有LUMO能量的电子受体比HOMO能量更接近E _(F)产生负OCP和PC。在所有情况下,分子结中的低聚物的PC光谱和吸收光谱具有非常相似的形状和最大波长。由于键合和接触面积的差异,顶部和底部电极的电子耦合不对称会导致内部电势梯度,从而控制PC和OCP极性。结果直接表明哪些轨道能量最接近E_(F),并且还表明厚于5 nm的分子结中的传输受HOMO和LUMO轨道能量差的控制。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2018年第5期|1900-1909|共10页
  • 作者单位

    Department of Chemistry, University of Alberta, Edmonton, Alberta, Canada, T6G 2R3,National Institute for Nanotechnology, National Research Council Canada, Edmonton, Alberta, Canada, T6G 2G2;

    Department of Chemistry, University of Alberta, Edmonton, Alberta, Canada, T6G 2R3,National Institute for Nanotechnology, National Research Council Canada, Edmonton, Alberta, Canada, T6G 2G2;

    Department of Chemistry, University of Alberta, Edmonton, Alberta, Canada, T6G 2R3,National Institute for Nanotechnology, National Research Council Canada, Edmonton, Alberta, Canada, T6G 2G2;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 03:07:18

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