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控制单分子水平的电子态和输运性质。

Controlling electronic States and transport properties at the level of single molecules.

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale University of Science and Technology of China, Anhui, P R China.

出版信息

Adv Mater. 2010 May 4;22(17):1967-71. doi: 10.1002/adma.200903795.

Abstract

Since molecular electronics has been rapidly growing as a promising alternative to conventional electronics towards the ultimate miniaturization of electronic devices through the bottom-up strategy, it has become a long-term desire to understand and control the transport properties at the level of single molecules. In this Research News article it is shown that one may modify the electronic states of single molecules and thus control their transport properties through designing and fabrication of functional molecules or manipulating molecules with scanning tunneling microscopy. The rectifying effect of single molecules can be realized by designing a donor-barrier-acceptor architecture of Pyridine-sigma-C(60) molecules to achieve the Aviram-Ratner rectifier and by modifying electronic states through azafullerene C(59)N molecules. The effect of the negative differential resistances can be realized by appropriately matching the molecular orbital symmetries between a cobalt phthalocyanine (CoPc) molecule and a Ni electrode. The electronic states and transport properties of single molecules, such as CoPc and melamine molecules, can be altered through manipulation or modifying molecular structures, leading to functionalized molecular devices.

摘要

由于分子电子学作为一种有前途的替代传统电子学的方法,通过自下而上的策略朝着电子设备的最终小型化方向发展,因此长期以来一直渴望理解和控制单个分子水平的输运性质。在这篇研究新闻文章中,我们表明,通过设计和制造功能分子或使用扫描隧道显微镜操纵分子,可以修饰单个分子的电子态,从而控制它们的输运性质。通过设计吡啶-sigma-C(60)分子的施主-势垒-受主结构来实现单分子的整流效应,从而实现阿维拉姆-拉特纳整流器,并通过氮杂富勒烯 C(59)N 分子修饰电子态,可以实现单分子的整流效应。通过适当匹配钴酞菁 (CoPc) 分子和镍电极之间的分子轨道对称性,可以实现负微分电阻效应。通过操纵或修饰分子结构,可以改变单个分子(如 CoPc 和三聚氰胺分子)的电子态和输运性质,从而实现功能化的分子器件。

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