论文标题

相关的能级比对效应确定取代基调节的单分子电导

Correlated Energy-Level Alignment Effects Determine Substituent-Tuned Single-Molecule Conductance

论文作者

Ivie, Jeffrey A., Bamberger, Nathan D., Parida, Keshaba N., Shepard, Stuart, Dyer, Dylan, Saraiva-Souza, Aldilene, Himmelhuber, Roland, McGrath, Dominic V., Smeu, Manuel, Monti, Oliver L. A.

论文摘要

单分子电气成分的合理设计需要对结构功能关系的深刻而预测的理解。在这里,我们使用官能化的寡苯基乙烯基乙烯作为模型系统探索化学取代基与金属单个分子 - 金属连接的电导之间的关系。使用机械控制的分离实验和包括非平衡绿色功能在内的各种理论的组合,我们证明了气相分子电子结构与结节分子电导之间的联系变得复杂,这是由于多重相关的和相反的效应的参与而有助于能量水平的相对效应,从而有助于符合符号的能级水平。我们建议这些相反的相关性代表了强大的新“设计原理”,因为它们的物理起源使它们广泛适用,并且能够预测观察到的电导趋势的方向和相对幅度。特别是,我们表明它们与观察到的电导变异性不仅在我们自己的实验结果中,而且在文献中报道的不同分子序列中,而且至关重要的是,这些分子序列的可变性趋势,这是以前的简单模型无法解释的。因此,此处介绍的设计原理可以有助于筛选和提出新颖的设计策略,以最大程度地提高单分子系统中的电导性可调性。

The rational design of single molecule electrical components requires a deep and predictive understanding of structure-function relationships. Here we explore the relationship between chemical substituents and the conductance of metal-single molecule-metal junctions, using functionalized oligophenylenevinylenes as a model system. Using a combination of mechanically controlled break-junction experiments and various levels of theory including non-equilibrium Green's functions, we demonstrate that the connection between gas-phase molecular electronic structure and in-junction molecular conductance is complicated by the involvement of multiple mutually correlated and opposing effects that contribute to energy level alignment in the junction. We propose that these opposing correlations represent powerful new "design principles," because their physical origins make them broadly applicable, and they are capable of predicting the direction and relative magnitude of observed conductance trends. In particular, we show that they are consistent with the observed conductance variability not just within our own experimental results, but also within disparate molecular series reported in literature and, crucially, with the trend in variability across these molecular series, which previous simple models fail to explain. The design principles introduced here can therefore aid in both screening and suggesting novel design strategies for maximizing conductance tunability in single-molecule systems.

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