Adsorption of Mn atom on pristine and defected graphene: a density functional theory study

被引:11
|
作者
Anithaa, V. S. [1 ]
Shankar, R. [1 ]
Vijayakumar, S. [2 ]
机构
[1] Bharathiar Univ, Dept Phys, Coimbatore 641046, Tamil Nadu, India
[2] Bharathiar Univ, Dept Med Phys, Coimbatore 641046, Tamil Nadu, India
关键词
Pristine and defected graphene; Size of graphene; Mn atom adsorption; Coverage effect; Density of states; METAL ADATOM ADSORPTION; ENERGY; SITES;
D O I
10.1007/s00894-017-3300-5
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The functionalization of graphene with transition metals is of great interest due to its wide range of applications, such as hydrogen storage, spintronics, information storage, etc. Due to its magnetic property adsorption of Mn atom on graphene has a high consequence on the electronic properties of graphene. The increase in size of the graphene sheet with hydrogen termination has a high impact on the transformation of electronic properties of the graphene sheet. Hence in this work, we investigate the size as well as change in structural and electronic properties of pristine/defective graphene sheets on adsorption of Mn atom using density functional theory methods. From the results obtained a higher adsorption energy value of 3.04 eV is found for Mn adatom on the defected graphene sheet than the pristine, 1.85 eV. It is subject to the coverage effect which decreases on increasing number of carbon atoms. Moreover, a decrease in energy gap is observed in pristine and defected graphene sheets with a high number of carbon atoms. The density of states illustrates the significant effect for hydrogen termination in the conduction band of the Mn adsorbed graphene sheet with low carbon atoms.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Adsorption of Mn atom on pristine and defected graphene: a density functional theory study
    V. S. Anithaa
    R. Shankar
    S. Vijayakumar
    Journal of Molecular Modeling, 2017, 23
  • [2] Density functional theory study on the adsorption of alkali metal ions with pristine and defected graphene sheet
    Sangavi, S.
    Santhanamoorthi, N.
    Vijayakumar, S.
    MOLECULAR PHYSICS, 2019, 117 (04) : 462 - 473
  • [3] SO2 adsorption and conversion on pristine and defected calcite {104} surface: A density functional theory study
    Zhang, Hongping
    Zhang, Run
    Ni, Yuxiang
    Chen, Meng
    Sun, Chenghua
    Dong, Faqin
    APPLIED SURFACE SCIENCE, 2022, 596
  • [4] Adsorption of an Mn atom on a ZnO sheet and nanotube: a density functional theory study
    He, A. L.
    Wang, X. Q.
    Wu, R. Q.
    Lu, Y. H.
    Feng, Y. P.
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2010, 22 (17)
  • [5] Platinum single-atom adsorption on graphene: a density functional theory study
    Wella, Sasfan Arman
    Hamamoto, Yuji
    Suprijadi
    Morikawa, Yoshitada
    Hamada, Ikutaro
    NANOSCALE ADVANCES, 2019, 1 (03): : 1165 - 1174
  • [6] First Principles Study of Gas Adsorption Dynamics on Pristine and Defected Graphene
    Wlazlo, M.
    Majewski, J. A.
    ACTA PHYSICA POLONICA A, 2016, 129 (1A) : A142 - A144
  • [7] Adsorption and diffusion of Li with S on pristine and defected graphene
    Liang, Zhicong
    Fan, Xiaofeng
    Singh, David J.
    Zheng, W. T.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2016, 18 (45) : 31268 - 31276
  • [8] Atomic and molecular adsorption on single platinum atom at the graphene edge: A density functional theory study
    Wella, Sasfan Arman
    Hamamoto, Yuji
    Iskandar, Ferry
    Suprijadi
    Morikawa, Yoshitada
    Hamada, Ikutaro
    JOURNAL OF CHEMICAL PHYSICS, 2020, 152 (10):
  • [9] Adsorption of oxygen atom on the pristine and antisite defected SiC nanotubes
    Liang, Rui-Li
    Zhang, Yan
    Zhang, Jian-Min
    Ji, Vincent
    PHYSICA B-CONDENSED MATTER, 2010, 405 (12) : 2673 - 2679
  • [10] A Density Functional Theory Study of Adsorption Ethionamide on the Surface of the Pristine, Si and Ga and Al-Doped Graphene
    Vessally, Esmail
    Musavi, Mahla
    Heravi, Poor
    Reza, Mohammad
    Hosseinian, Akram
    IRANIAN JOURNAL OF CHEMISTRY & CHEMICAL ENGINEERING-INTERNATIONAL ENGLISH EDITION, 2021, 40 (06): : 1720 - 1736