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石墨烯上的垂直单晶有机纳米线:溶液法外延生长和光学微腔。

Vertical Single-Crystalline Organic Nanowires on Graphene: Solution-Phase Epitaxy and Optical Microcavities.

机构信息

Key Laboratory of Organic Solids, Institute of Chemistry, Chinese Academy of Sciences , Beijing 100190, People's Republic of China.

Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Department of Chemistry, School of Science, Tianjin University and Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) , Tianjin 300072, China.

出版信息

Nano Lett. 2016 Aug 10;16(8):4754-62. doi: 10.1021/acs.nanolett.6b00526. Epub 2016 Jul 20.

Abstract

Vertically aligned nanowires (NWs) of single crystal semiconductors have attracted a great deal of interest in the past few years. They have strong potential to be used in device structures with high density and with intriguing optoelectronic properties. However, fabricating such nanowire structures using organic semiconducting materials remains technically challenging. Here we report a simple procedure for the synthesis of crystalline 9,10-bis(phenylethynyl) anthracene (BPEA) NWs on a graphene surface utilizing a solution-phase van der Waals (vdW) epitaxial strategy. The wires are found to grow preferentially in a vertical direction on the surface of graphene. Structural characterization and first-principles ab initio simulations were performed to investigate the epitaxial growth and the molecular orientation of the BPEA molecules on graphene was studied, revealing the role of interactions at the graphene-BPEA interface in determining the molecular orientation. These free-standing NWs showed not only efficient optical waveguiding with low loss along the NW but also confinement of light between the two end facets of the NW forming a microcavity Fabry-Pérot resonator. From an analysis of the optical dispersion within such NW microcavities, we observed strong slowing of the waveguided light with a group velocity reduced to one-tenth the speed of light. Applications of the vertical single-crystalline organic NWs grown on graphene will benefit from a combination of the unique electronic properties and flexibility of graphene and the tunable optical and electronic properties of organic NWs. Therefore, these vertical organic NW arrays on graphene offer the potential for realizing future on-chip light sources.

摘要

过去几年中,垂直排列的单晶半导体纳米线(NWs)引起了极大的关注。它们具有在高密度器件结构中使用的巨大潜力,并具有有趣的光电性能。然而,使用有机半导体材料制造这种纳米线结构在技术上仍然具有挑战性。在这里,我们报告了一种在石墨烯表面上利用溶液相范德华(vdW)外延策略合成结晶 9,10-双(苯乙炔基)蒽(BPEA)NWs 的简单方法。发现这些线优先在石墨烯表面上垂直生长。进行了结构表征和第一性原理从头算模拟,以研究 BPEA 分子在石墨烯上的外延生长和分子取向,揭示了石墨烯-BPEA 界面相互作用在确定分子取向中的作用。这些独立的 NW 不仅在 NW 中表现出高效的低损耗光学导波,而且在 NW 的两个端面之间形成微腔法布里-珀罗谐振器,限制了光的传播。从对这种 NW 微腔中的光色散的分析中,我们观察到波导光的强烈减速,群速度降低到光速的十分之一。在石墨烯上生长的垂直单晶有机 NW 的应用将受益于石墨烯独特的电子性质和灵活性以及有机 NW 可调谐的光学和电子性质的结合。因此,这些垂直有机 NW 阵列在石墨烯上为实现未来的片上光源提供了潜力。

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