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分子结构与单结电导的相关性:以寡聚(苯乙炔)型分子为例。

Correlations between molecular structure and single-junction conductance: a case study with oligo(phenylene-ethynylene)-type wires.

机构信息

Department of Chemistry and Biochemistry, University of Berne, Freiestrasse 3, CH-3012 Berne, Switzerland.

出版信息

J Am Chem Soc. 2012 Mar 21;134(11):5262-75. doi: 10.1021/ja211555x. Epub 2012 Mar 6.

DOI:10.1021/ja211555x
PMID:22352944
Abstract

The charge transport characteristics of 11 tailor-made dithiol-terminated oligo(phenylene-ethynylene) (OPE)-type molecules attached to two gold electrodes were studied at a solid/liquid interface in a combined approach using an STM break junction (STM-BJ) and a mechanically controlled break junction (MCBJ) setup. We designed and characterized 11 structurally distinct dithiol-terminated OPE-type molecules with varied length and HOMO/LUMO energy. Increase of the molecular length and/or of the HOMO-LUMO gap leads to a decrease of the single-junction conductance of the linearly conjugate acenes. The experimental data and simulations suggest a nonresonant tunneling mechanism involving hole transport through the molecular HOMO, with a decay constant β = 3.4 ± 0.1 nm(-1) and a contact resistance R(c) = 40 kΩ per Au-S bond. The introduction of a cross-conjugated anthraquinone or a dihydroanthracene central unit results in lower conductance values, which are attributed to a destructive quantum interference phenomenon for the former and a broken π-conjugation for the latter. The statistical analysis of conductance-distance and current-voltage traces revealed details of evolution and breaking of molecular junctions. In particular, we explored the effect of stretching rate and junction stability. We compare our experimental results with DFT calculations using the ab initio code SMEAGOL and discuss how the structure of the molecular wires affects the conductance values.

摘要

在固/液界面上,通过使用 STM 断裂结 (STM-BJ) 和机械控制断裂结 (MCBJ) 装置,研究了附着在两个金电极上的 11 种定制的二硫醇封端的寡聚 (苯乙炔) (OPE) 型分子的电荷输运特性。我们设计并表征了 11 种结构不同的二硫醇封端的 OPE 型分子,它们的长度和 HOMO/LUMO 能量各不相同。分子长度和/或 HOMO-LUMO 间隙的增加会导致线性共轭 acenes 的单结电导率降低。实验数据和模拟表明,涉及通过分子 HOMO 进行空穴传输的非共振隧道机制,衰减常数β=3.4±0.1nm^-1,每个 Au-S 键的接触电阻 R(c)=40kΩ。引入交叉共轭蒽醌或二氢蒽醌中心单元会导致电导值降低,这归因于前者的破坏性量子干涉现象和后者的π键断裂。电导-距离和电流-电压迹线的统计分析揭示了分子结演变和断裂的细节。特别是,我们探索了拉伸速率和结稳定性的影响。我们将实验结果与使用从头算代码 SMEAGOL 的 DFT 计算进行了比较,并讨论了分子线的结构如何影响电导值。

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