Structural Characteristics and Chemical Reactivity of Doped Graphene Nanosheets

被引:14
|
作者
Chigo Anota, E. [1 ]
Ramirez Gutierrez, R. E. [2 ]
Perez Sanchez, F. L. [3 ]
Sanchez Ramirez, J. F. [4 ]
机构
[1] Benemrita Univ Autonoma, Puebla Fac Ingn Quim, Edificio 106E,C San Manuel, Puebla 72570, Mexico
[2] Benemrita Univ Autonoma, Puebla Fac Ciencia Quim, Puebla 72570, Mexico
[3] Escuela Ciencias Univ Aut noma Benito Jurez Oaxa, Mexico City 68120, DF, Mexico
[4] Inst Politcnico Nacl UPIITA IPN, Mexico City 07340, DF, Mexico
关键词
Graphene; CnHm Cluster; DFT Theory; Chemical Reactivity; MEP;
D O I
10.1166/graph.2013.1008
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We examine the structural properties and chemical reactivity of the graphene nanosheets (GNs), represented by circular CnHm-like cluster model with armchair edge, when doped with elements of the first row of the elements periodic table, such as: Be, B, N, B-N, O and F. We use the Density Functional Theory (DFT) based in the scheme developed by Perdew-Wang to represent the exchange-correlation functional, i.e., we perform a survey about local properties. According to our analysis we observed that only for situations when GNs contain two atoms of oxygen and fluorine there are not O-O and F-F bonds. In this case we observed how the honeycomb flat lattice is strained when it undergoes a C-C bond dissociation. On the other hand, we noted variations in the difference of HOMO-LUMO energy in doped GNs, whose values are: 1.04 (G: Be), 0.55 (G: B) 0.57 (G: N), 1.26 (G: O) and 2.19 eV for the G doped with fluorine. The polarity of these systems is kept with a low value (covalent characteristic) and only when they are doped with B and N the polarity is increased to 2.17 D. Furthermore, we observe that only the nitrogen and oxygen impurities increase the chemical reactivity of graphene; this analysis was performed in terms of the molecular electrostatic potential (MEP), in order to explore intermolecular properties such as the charge distribution.
引用
收藏
页码:31 / 36
页数:6
相关论文
共 50 条
  • [21] Thermoelectric Properties of Pristine and Doped Graphene Nanosheets and Graphene Nanoribbons: Part I
    Sarang V. Muley
    N. M. Ravindra
    JOM, 2016, 68 : 1653 - 1659
  • [22] Suitable Chemical Methods for Preparation of Graphene Oxide, Graphene and Surface Functionalized Graphene Nanosheets
    Sheshmani, Shabnam
    Fashapoyeh, Marzieh Arab
    ACTA CHIMICA SLOVENICA, 2013, 60 (04) : 813 - 825
  • [23] Biomolecules Behavior on a Surface of Boron Doped/un-doped Graphene Nanosheets
    Amari, Abdelfattah
    Alalwan, Basem
    Siddeeg, Saifeldin M.
    Tahoon, Mohamed A.
    Alsaiari, Norah Salem
    Ben Rebah, Faouzi
    INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE, 2020, 15 (11): : 11427 - 11436
  • [24] Structural, optical, and electrical characteristics of graphene nanosheets synthesized from microwave-assisted exfoliated graphite
    Chamoli, Pankaj
    Das, Malay K.
    Kar, Kamal K.
    JOURNAL OF APPLIED PHYSICS, 2017, 122 (18)
  • [25] Chemical Reactivity and Band-Gap Opening of Graphene Doped with Gallium, Germanium, Arsenic, and Selenium Atoms
    Denis, Pablo A.
    CHEMPHYSCHEM, 2014, 15 (18) : 3994 - 4000
  • [26] Chemical reactivity of graphene doped with 3d transition metals: nothing compares to a single vacancy
    Denis, Pablo A.
    JOURNAL OF MOLECULAR MODELING, 2024, 30 (04)
  • [27] Chemical reactivity of graphene doped with 3d transition metals: nothing compares to a single vacancy
    Pablo A. Denis
    Journal of Molecular Modeling, 2024, 30
  • [28] Si-doped graphene nanosheets for NOx gas sensing
    Niu, Fang
    Shao, Zhen-Wu
    Gao, Hong
    Tao, Li-Ming
    Ding, Yong
    SENSORS AND ACTUATORS B-CHEMICAL, 2021, 328
  • [29] Enzyme-Doped Graphene Nanosheets for Enhanced Glucose Biosensing
    Alwarappan, Subbiah
    Liu, Chang
    Kumar, Ashok
    Li, Chen-Zhong
    JOURNAL OF PHYSICAL CHEMISTRY C, 2010, 114 (30): : 12920 - 12924
  • [30] Synthesis and characterization of boron doped graphene nanosheets for supercapacitor applications
    Thirumal, V.
    Pandurangan, A.
    Jayavel, R.
    Ilangovan, R.
    SYNTHETIC METALS, 2016, 220 : 524 - 532