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表面脱氢偶联反应中的拓扑选择性:树枝状结构多孔石墨烯纳米带

Topology Selectivity in On-Surface Dehydrogenative Coupling Reaction: Dendritic Structure Porous Graphene Nanoribbon.

作者信息

Huang Jianmin, Pan Yu, Wang Tao, Cui Shengsheng, Feng Lin, Han Dong, Zhang Wenzhao, Zeng Zhiwen, Li Xingyu, Du Pingwu, Wu Xiaojun, Zhu Junfa

机构信息

National Synchrotron Radiation Laboratory, Department of Chemical Physics and Key Laboratory of Surface and Interface Chemistry and Energy Catalysis of Anhui Higher Education Institutes, University of Science and Technology of China, Hefei 230029, P.R. China.

Hefei National Laboratory of Physical Science at the Microscale, CAS Key Laboratory of Materials for Energy Conversion, Department of Materials Science and Engineering, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Synergetic Innovation of Quantum Information and Quantum Technology, and CAS Center for Excellence in Nanoscience, University of Science and Technology of China, 96 Jinzhai Road, Hefei 230026, P.R. China.

出版信息

ACS Nano. 2021 Mar 23;15(3):4617-4626. doi: 10.1021/acsnano.0c08920. Epub 2021 Feb 16.

Abstract

Selective control on the topology of low-dimensional covalent organic nanostructures in on-surface synthesis has been challenging. Herein, with combined scanning tunneling microscopy (STM) and X-ray photoelectron spectroscopy (XPS), we report a successful topology-selective coupling reaction on the Cu(111) surface by tuning the thermal annealing procedure. The precursor employed is 1,3,5-tris(2-bromophenyl)benzene (TBPB), for which Ullmann coupling is impeded due to the intermolecular steric hindrance. Instead, its chemisorption on the Cu(111) substrate has triggered the C-H bond activation and the following dehydrogenative coupling at room temperature (RT). In the slow annealing experimental procedure, the monomers have been preorganized by their self-assembly at RT, which enhances the formation of dendritic structures upon further annealing. However, the chaotic chirality of dimeric products (obtained at RT) and hindrance from dense molecular island make the fabrication of high-quality porous two-dimensional nanostructures difficult. In sharp contrast, direct deposition of TBPB molecules on a hot surface led to the formation of ordered porous graphene nanoribbons and nanoflakes, which is confirmed to be the energetically favorable reaction pathway through density functional theory-based thermodynamic calculations and control experiments. This work demonstrates that different thermal treatments could have a significant influence on the topology of covalent products in on-surface synthesis and presents an example of the negative effect of molecular self-assembly to the ordered covalent nanostructures.

摘要

在表面合成中对低维共价有机纳米结构的拓扑结构进行选择性控制一直具有挑战性。在此,我们结合扫描隧道显微镜(STM)和X射线光电子能谱(XPS),报告了通过调整热退火程序在Cu(111)表面成功实现的拓扑选择性偶联反应。所使用的前驱体是1,3,5-三(2-溴苯基)苯(TBPB),由于分子间的空间位阻,其乌尔曼偶联反应受到阻碍。相反,它在Cu(111)衬底上的化学吸附在室温(RT)下引发了C-H键活化以及随后的脱氢偶联反应。在缓慢退火实验过程中,单体在室温下通过自组装进行了预组织,这在进一步退火时增强了树枝状结构的形成。然而,二聚体产物(在室温下获得)的混乱手性以及密集分子岛的阻碍使得高质量多孔二维纳米结构的制备变得困难。与之形成鲜明对比的是,将TBPB分子直接沉积在热表面上导致了有序多孔石墨烯纳米带和纳米片的形成,通过基于密度泛函理论的热力学计算和对照实验证实这是能量上有利的反应途径。这项工作表明,不同的热处理对表面合成中共价产物拓扑结构有显著影响,并展示了分子自组装对有序共价纳米结构产生负面影响的一个例子。

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