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纳米石墨烯作为单分子电子学的活性成分以及扫描隧道显微镜如何使其发挥作用。

Nanographenes as active components of single-molecule electronics and how a scanning tunneling microscope puts them to work.

作者信息

Müllen Klaus, Rabe Jürgen P

机构信息

Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.

出版信息

Acc Chem Res. 2008 Apr;41(4):511-20. doi: 10.1021/ar7001446.

Abstract

Single-molecule electronics, that is, realizing novel electronic functionalities from single (or very few) molecules, holds promise for application in various technologies, including signal processing and sensing. Nanographenes, which are extended polycyclic aromatic hydrocarbons (PAHs), are highly attractive subjects for studies of single-molecule electronics because the electronic properties of their flat conjugated systems can be varied dramatically through synthetic modification of their sizes and topologies. Single nanographenes provide high tunneling currents when adsorbed flat onto conducting substrates, such as graphite. Because of their chemical inertness, nanographenes interact only weakly with these substrates, thereby preventing the need for special epitaxial structure matching. Instead, self-assembly at the interface between a conducting solid, such as the basal plane of graphite, and a nanographene solution generally leads to highly ordered monolayers. Scanning tunneling spectroscopy (STS) allows the current-voltage characteristics to be measured through a single molecule positioned between two electrodes; the key to the success of STS is the ability to position the scanning tunneling microscopy (STM) tip freely with respect to the molecule in all dimensions, that is, both parallel and perpendicular to the surface. In this Account, we report the properties of nanographenes having sizes ranging from 0.7 to 3.1 nm and exhibiting various symmetry, periphery, and substitution types. The size of the aromatic system and the nature of its perimeter are two essential features affecting its HOMO-LUMO gap and charge carrier mobility in the condensed phase. Moreover, the extended pi area of larger substituted PAHs improves the degree of self-ordering, another key requirement for high-performance electronic devices. Self-assembly at the interface between an organic solution and the basal plane of graphite allows deposition of single molecules within the well-defined environment of a molecular monolayer. We have used STM and STS to investigate both the structures and electronic properties of these single molecules in situ. Indeed, we have observed key electronic functions, rectification and current control through single molecules, within a prototypical chemical field-effect transistor at ambient temperature. The combination of nanographenes and STM/STS, with the PAHs self-assembled in oriented molecular mono- or bilayers at the interface between an organic solution and the basal plane of graphite and contacted by the STM tip, is a simple, reliable, and versatile system for developing the fundamental concepts of molecular electronics. Our future targets include fast reversible molecular switches and complex molecular electronic devices coupled together from several single-molecule systems.

摘要

单分子电子学,即从单个(或极少数)分子实现新型电子功能,在包括信号处理和传感在内的各种技术中具有应用前景。纳米石墨烯是扩展的多环芳烃(PAHs),是单分子电子学研究中极具吸引力的对象,因为其平面共轭体系的电子性质可通过对其尺寸和拓扑结构的合成修饰而发生显著变化。单个纳米石墨烯平放在导电基底(如石墨)上时会提供高隧穿电流。由于其化学惰性,纳米石墨烯与这些基底的相互作用很弱,因此无需特殊的外延结构匹配。相反,在导电固体(如石墨基面)与纳米石墨烯溶液之间的界面处进行自组装,通常会形成高度有序的单层。扫描隧道谱(STS)可通过位于两个电极之间的单个分子来测量电流 - 电压特性;STS成功的关键在于能够在所有维度上,即平行和垂直于表面,相对于分子自由定位扫描隧道显微镜(STM)探针。在本综述中,我们报告了尺寸范围从0.7到3.1 nm、具有各种对称性、边缘和取代类型的纳米石墨烯的性质。芳香体系的大小及其周边性质是影响其在凝聚相中的最高占据分子轨道(HOMO) - 最低未占据分子轨道(LUMO)能隙和电荷载流子迁移率的两个基本特征。此外,较大取代的PAHs的扩展π面积提高了自排序程度,这是高性能电子器件的另一个关键要求。在有机溶液与石墨基面之间的界面处进行自组装,可将单分子沉积在分子单层的明确环境中。我们使用STM和STS原位研究了这些单分子的结构和电子性质。实际上,我们在室温下的典型化学场效应晶体管中观察到了关键的电子功能,即通过单分子的整流和电流控制。纳米石墨烯与STM/STS的结合,其中PAHs在有机溶液与石墨基面之间的界面处以取向分子单层或双层形式自组装,并通过STM探针接触,是一个用于发展分子电子学基本概念的简单、可靠且通用的系统。我们未来的目标包括快速可逆分子开关以及由几个单分子系统耦合在一起的复杂分子电子器件。

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