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Fine tuning of the electronic structure of π-conjugated molecules for molecular electronics

机译:分子电子学中π共轭分子电子结构的微调

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摘要

Molecular components with their inherent scalability are expected to be promising supplements for nanoscale electronic devices. Here we report on how to specifically tune the electronic structure of chemisorbed molecules and thus to gain control of molecular transport properties. The electronic structure of our prototype π-conjugated carboxylic acid anchored on the Cu(110) surface is modified systematically by inserting nitrogen atoms in a six-membered aromatic ring, a carboxylic functional group at the aromatic ring or both. Depending on the specific nature of the substituent, the relative position of the occupied or unoccupied electronic states with respect to the Fermi level can be specifically controlled and thus the transport properties of the studied molecular systems are modified intentionally, as proven by our scanning tunneling spectroscopy measurements. On the basis of the insight gained by our systematic experiment and first-principles calculations we are also able to predict the specific molecular character (σ or π) of the orbitals involved in the transport process of a carboxylate-Cu(110) system, depending on the functionalization pattern employed.
机译:具有固有可扩展性的分子组件有望成为纳米级电子设备的有前途的补充。在这里,我们报告了如何专门调整化学吸附分子的电子结构,从而获得对分子传输特性的控制。通过将氮原子插入六元芳族环,芳族环上的羧基官能团或两者中,可以系统地修饰锚定在Cu(110)表面上的原型π-共轭羧酸的电子结构。取决于取代基的特定性质,可以具体控制相对于费米能级的占据或未占据电子态的相对位置,因此,有意地改变了所研究分子系统的传输性质,这已通过我们的扫描隧道光谱学证明。测量。根据我们的系统实验和第一性原理计算获得的见解,我们还能够预测与羧酸盐-Cu(110)系统传输过程有关的轨道的特定分子特征(σ或π)。关于所使用的功能化模式。

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