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首页> 外文期刊>Nano letters >Selective supramolecular fullerene-porphyrin interactions and switching in surface-confined C _(60)-Ce(TPP) _2 dyads
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Selective supramolecular fullerene-porphyrin interactions and switching in surface-confined C _(60)-Ce(TPP) _2 dyads

机译:在表面受限的C _(60)-Ce(TPP)_2二聚体中的选择性超分子富勒烯-卟啉相​​互作用和转换

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摘要

The control of organic molecules, supramolecular complexes and donor-acceptor systems at interfaces is a key issue in the development of novel hybrid architectures for regulation of charge-carrier transport pathways in nanoelectronics or organic photovoltaics. However, at present little is known regarding the intricate features of stacked molecular nanostructures stabilized by noncovalent interactions. Here we explore at the single molecule level the geometry and electronic properties of model donor-acceptor dyads stabilized by van der Waals interactions on a single crystal Ag(111) support. Our combined scanning tunneling microscopy/spectroscopy (STM/STS) and first-principles computational modeling study reveals site-selective positioning of C _(60) molecules on Ce(TPP) _2 porphyrin double-decker arrays with the fullerene centered on the π-system of the top bowl-shaped tetrapyrrole macrocycle. Three specific orientations of the C _(60) cage in the van der Waals complex are identified that can be reversibly switched by STM manipulation protocols. Each configuration presents a distinct conductivity, which accounts for a tristable molecular switch and the tunability of the intradyad coupling. In addition, STS data evidence electronic decoupling of the hovering C _(60) units from the metal substrate, a prerequisite for photophysical applications.
机译:在界面上控制有机分子,超分子复合物和供体-受体系统是开发新型混合体系结构的关键问题,该体系结构可用于调节纳米电子或有机光伏中的载流子传输路径。然而,目前关于通过非共价相互作用稳定的堆叠分子纳米结构的复杂特征知之甚少。在这里,我们在单分子水平上探索通过范德华相互作用在单晶Ag(111)载体上稳定的模型供体-受体二元组的几何形状和电子性质。我们结合的扫描隧道显微镜/光谱学(STM / STS)和第一性原理计算模型研究揭示了Ce(TPP)_2卟啉双层阵列上C _(60)分子的位置选择性定位,富勒烯以π-为中心顶碗形四吡咯大环的体系。确定了范德华复合物中C _(60)笼的三个特定方向,这些方向可以通过STM操作规程可逆地切换。每种构型均具有不同的电导率,这说明了三稳态分子开关和二元内偶联的可调性。此外,STS数据证明了悬停的C_(60)单元与金属基板之间的电子解耦,这是光物理应用的先决条件。

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