Qin Tianchen, Guo Dezhou, Xiong Juanjuan, Li Xingyu, Hu Lei, Yang Weishan, Chen Zijie, Wu Yulun, Ding Honghe, Hu Jun, Xu Qian, Wang Tao, Zhu Junfa
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.
State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing, 100081, P. R. China.
Angew Chem Int Ed Engl. 2023 Oct 23;62(43):e202306368. doi: 10.1002/anie.202306368. Epub 2023 Sep 15.
The electrical and mechanical properties of graphene-based materials can be tuned by the introduction of nanopores, which are sensitively related to the size, morphology, density, and location of nanopores. The synthesis of low-dimensional graphene nanostructures containing well-defined nonplanar nanopores has been challenging due to the intrinsic steric hindrance. Herein, we report the selective synthesis of one-dimensional (1D) graphene nanoribbons (GNRs) containing periodic nonplanar [14]annulene pores on Ag(111) and two-dimensional (2D) porous graphene nanosheet containing periodic nonplanar [30]annulene pores on Au(111), starting from a same precursor. The formation of distinct products on the two substrates originates from the different thermodynamics and kinetics of coupling reactions. The reaction mechanisms were confirmed by a series of control experiments, and the appropriate thermodynamic and kinetic parameters for optimizing the reaction pathways were proposed. In addition, the combined scanning tunneling spectroscopy (STS) and density functional theory (DFT) calculations revealed the electronic structures of porous graphene structures, demonstrating the impact of nonplanar pores on the π-conjugation of molecules.
通过引入纳米孔可以调节基于石墨烯材料的电学和力学性能,这些性能与纳米孔的尺寸、形态、密度和位置密切相关。由于固有的空间位阻,合成包含明确非平面纳米孔的低维石墨烯纳米结构一直具有挑战性。在此,我们报道了从同一前驱体出发,在Ag(111)上选择性合成包含周期性非平面[14]轮烯孔的一维(1D)石墨烯纳米带(GNRs),以及在Au(111)上合成包含周期性非平面[30]轮烯孔的二维(2D)多孔石墨烯纳米片。在两种衬底上形成不同产物源于偶联反应的不同热力学和动力学。通过一系列对照实验证实了反应机理,并提出了优化反应途径的合适热力学和动力学参数。此外,结合扫描隧道谱(STS)和密度泛函理论(DFT)计算揭示了多孔石墨烯结构的电子结构,证明了非平面孔对分子π共轭的影响。