The thermodynamic stability and simulated STM images of graphene nanoribbons

被引:8
|
作者
Wassmann, T. [1 ]
Seitsonen, A. P. [1 ]
Saitta, A. M. [1 ]
Lazzeri, M. [1 ]
Mauri, F. [1 ]
机构
[1] Univ Paris 06, Inst Mineral & Phys Milieux Condenses, CNRS, F-75015 Paris, France
来源
关键词
POLYCYCLIC AROMATIC-HYDROCARBONS; SCANNING TUNNELING MICROSCOPE; ELECTRONIC-PROPERTIES; CARBON NANOTUBES; FORM;
D O I
10.1002/pssb.200982324
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
In this study, we investigated the edge formation energy of hydrogen-terminated graphene nanoribbons as a function of the chemical potential of the environment as well as their electronic and magnetic properties by means of density functional theory. The single-hydro.-en-terminated zigzag ribbons, well known for their antiferromagnetic edge states, were found to be stable only under extremely low vacuum pressures. At more standard conditions, the most stable structures are the single- and double-hydrogenated armchair edges and a zigzag edge configuration with one double- and two single-hydrogenated sites. At high hydrogen pressure, the edge formation energy becomes negative, meaning that graphene spontaneously breaks into ribbons. Clar type bond formulas proved to be an excellent tool for the rationale behind the stability, existence of edge states, and appearance of magnetism, and they are in perfect agreement with simulated scanning tunneling microscope (STM) images of the ribbons. [GRAPHICS] Bond formulas and simulated STM images show an identical pattern of Clar sextets. Left: single-hydrogen-terminated armchair ribbon. Right: double-hydrogen-terminated armchair ribbon. U= -0.5 V, sample-tip distance fixed at 3 angstrom. (C) 2009 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
引用
收藏
页码:2586 / 2591
页数:6
相关论文
共 50 条
  • [31] Structure and stability of graphene nanoribbons in oxygen, carbon dioxide, water, and ammonia
    Seitsonen, Ari P.
    Saitta, A. Marco
    Wassmann, Tobias
    Lazzeri, Michele
    Mauri, Francesco
    PHYSICAL REVIEW B, 2010, 82 (11):
  • [32] The stability and electronic structure of Fe atoms embedded in zigzag graphene nanoribbons
    Li, Hengshuai
    Hu, Haiquan
    Bao, Chunjiang
    Zhang, Xiaoming
    Wang, Aizhu
    Zhou, Hongcai
    Zhao, Mingwen
    PHYSICA B-CONDENSED MATTER, 2014, 441 : 28 - 32
  • [33] Metallic Graphene Nanoribbons
    Sheng-Yi Xie
    Xian-Bin Li
    Nano-Micro Letters, 2021, 13 (03) : 200 - 202
  • [34] Metallic Graphene Nanoribbons
    Xie, Sheng-Yi
    Li, Xian-Bin
    NANO-MICRO LETTERS, 2021, 13 (01)
  • [35] Orbital magnetization of graphene and graphene nanoribbons
    Liu, Junfeng
    Ma, Zhongshui
    Wright, A. R.
    Zhang, Chao
    JOURNAL OF APPLIED PHYSICS, 2008, 103 (10)
  • [36] Graphene nanoribbons with wings
    Bischoff, D.
    Eich, M.
    Libisch, F.
    Ihn, T.
    Ensslin, K.
    APPLIED PHYSICS LETTERS, 2015, 107 (20)
  • [37] Capacitance of graphene nanoribbons
    Shylau, A. A.
    Klos, J. W.
    Zozoulenko, I. V.
    PHYSICAL REVIEW B, 2009, 80 (20):
  • [38] Functionalization of graphene nanoribbons
    Genorio, Bostjan
    Znidarsic, Andrej
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2014, 47 (09)
  • [39] Routing with Graphene Nanoribbons
    Yan, Tan
    Ma, Qiang
    Chilstedt, Scott
    Wong, Martin D. F.
    Chen, Deming
    2011 16TH ASIA AND SOUTH PACIFIC DESIGN AUTOMATION CONFERENCE (ASP-DAC), 2011,
  • [40] Magnetoconductance of graphene nanoribbons
    Li, T. S.
    Huang, Y. C.
    Chang, S. C.
    Chang, C. P.
    Lin, M. F.
    PHILOSOPHICAL MAGAZINE, 2009, 89 (08) : 697 - 709