Electronic Properties of α-graphyne Nanoribbon with Vacancies

被引:0
|
作者
Divdel, Saeideh [1 ]
Khodadadi, Abolfazl [1 ]
Niazian, Mohammad Reza [2 ]
Yadollahi, Ali Mohammad [2 ]
Samavati, Katayoon [1 ]
机构
[1] Islamic Azad Univ, Dept Phys, North Tehran Branch, Tehran, Iran
[2] Islamic Azad Univ, Dept Phys, Ayatollah Amoli Branch, Amol, Iran
关键词
nanoribbon; alpha-graphyne; band structure; density of states; band gap; TRANSPORT-PROPERTIES; MAGNETIC-PROPERTIES; CARBON; 1ST-PRINCIPLES; PERFORMANCE; MEMBRANES; BORON;
D O I
10.1134/S1063782624601043
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
This research applies Density Functional Theory (DFT) to investigate the density of states (DOSs) and band structure and of alpha-graphyne nanoribbon (alpha-GYNRs) with 1 x 3 x 3 supercells. For this purpose, the GGA-PBE approximation and Non-equilibrium Green's Function (NEGF) approach are employed. A single carbon atom is removed to simulate the vacancy defect on the nanoribbon. According to the results, unlike alpha-graphene nanosheet, which has a band gap of 0 eV and is a semimetal, pure alpha-GYNRs has a band gap of 0.49 eV and is a semiconductor. Removing a carbon atom at 7 different points of alpha-GYNRs and creating a vacancy lowers the band gap significantly. The band gap in some structures is close to zero, which can be considered pseudo-metals. In addition, the DOS plots show that the height and number of peaks at energies 0 to -5 eV are higher than at energies 0 to +5 eV. Furthermore, the band gap due to the created vacancy directly depends on the vacancy position of the nanoribbon. Hence, the single-atom vacancy (SAV) defect in the alpha-graphyne nanostructure can lead to a subsurface structural rearrangement. Accordingly, it can be an important parameter in tuning the electronic characteristics of alpha-GYNRs structures.
引用
收藏
页码:651 / 667
页数:17
相关论文
共 50 条
  • [31] Electronic and Magnetic Properties of Transition metal doped graphyne
    Gangan, Abhijeet Sadashiv
    Yadav, Asha S.
    Chakraborty, Brahmananda
    Ramaniah, Lavanya M.
    61ST DAE-SOLID STATE PHYSICS SYMPOSIUM, 2017, 1832
  • [32] Effect of Nanoribbon Width and Strain on the Electronic Properties of the WS2 Nanoribbon
    Ghosh, Bahniman
    Gupta, Aayush
    JOURNAL OF LOW POWER ELECTRONICS, 2014, 10 (03) : 368 - 372
  • [33] Computation of some important degree-based topological indices for ?- graphyne and Zigzag graphyne nanoribbon
    Hakeem, Abdul
    Ullah, Asad
    Zaman, Shahid
    MOLECULAR PHYSICS, 2023, 121 (14)
  • [34] Strain Investigation on Spin-Dependent Transport Properties of γ-Graphyne Nanoribbon Between Gold Electrodes
    Yun Li
    Xiaobo Li
    Shidong Zhang
    Liemao Cao
    Fangping Ouyang
    Mengqiu Long
    Nanoscale Research Letters, 16
  • [35] Spin-resolved band structures and transport properties of δ-graphyne nanoribbon with bilateral or unilateral fluorination
    Li, Yun
    Li, Xiaobo
    Zhang, Shidong
    Zhang, Xiaojiao
    Long, Mengqiu
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2022, 546
  • [36] Strain Investigation on Spin-Dependent Transport Properties of γ-Graphyne Nanoribbon Between Gold Electrodes
    Li, Yun
    Li, Xiaobo
    Zhang, Shidong
    Cao, Liemao
    Ouyang, Fangping
    Long, Mengqiu
    NANOSCALE RESEARCH LETTERS, 2021, 16 (01):
  • [37] On the influence of vacancies on the electronic properties of beryllium
    Bakai, A. S.
    Timoshevkii, A. N.
    Kalkuta, S. A.
    Moeslang, A.
    Vladimirov, V. P.
    LOW TEMPERATURE PHYSICS, 2007, 33 (10) : 889 - 891
  • [38] Electronic properties of vacancies in bilayer graphane
    Mapasha, R. E.
    Igumbor, E.
    Andriambelaza, N. F.
    Chetty, N.
    PHYSICA B-CONDENSED MATTER, 2019, 573 : 67 - 71
  • [39] Thermoelectric properties of gamma-graphyne nanoribbon incorporating diamond-like quantum dots
    Wang, Caihua
    Ouyang, Tao
    Chen, Yuanping
    Zhou, Benhu
    Zhong, Jianxin
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2016, 49 (13)
  • [40] Electronic, thermoelectric and electrical transport properties of single layer γ-graphyne
    Ali, Sajid
    Sun, Mengtao
    MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS, 2024, 306