Electronic transport properties of boron and nitrogen pair co-doped 6,6,12-graphyne nanosheet from first principles

被引:4
作者
Su, Hui-Peng [1 ]
Qin, Xue-Fang [1 ]
Shao, Zhi-Gang [1 ]
机构
[1] South China Normal Univ, Guangdong Prov Key Lab Quantum Engn & Quantum Mat, Natl Demonstrat Ctr Expt Phys Educ,SPTE, Guangdong Engn Technol Res Ctr Efficient Green En, Guangzhou 510006, Guangdong, Peoples R China
基金
中国国家自然科学基金;
关键词
B-N pairs; 6,6,12-graphyne; electron transport; rectification effect; OPTICAL-PROPERTIES; DECORATED GRAPHYNE; CARRIER MOBILITY; CARBON; GRAPHENE; ARMCHAIR; ZIGZAG; ALPHA;
D O I
10.1088/1402-4896/ab0983
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The electronic transport properties of boron and nitrogen (B-N) pair co-doped 6,6,12-graphyne have been investigated comprehensively by means of the density functional theory combined with the non-equilibrium Green's function method. In previous studies, the 6,6,12-graphyne represents a small carrier effective mass and high carrier mobility, and its limit in electronic application caused by the closed band gap can be broken through by B-N pair co-doping. It is found that the B-N pair co-doped 6,6,12-graphyne exhibits anisotropic current. The current along the armchair direction is much stronger than that in the zigzag direction. Intriguingly, the current-voltage characteristics generically exhibit a negative differential resistance effect, regardless of the B-N pair doping conformations. In addition, a current rectification effect is observed in the two-probe device models based on the B-N pair co-doped 6,6,12-graphyne. Our results reveal that both the current and rectification effect are intimately connected with the transmission peaks appearing near the Fermi level. These findings suggest that the B-N pair co-doped 6,6,12-graphyne is a promising material for microelectronic device design.
引用
收藏
页数:6
相关论文
共 42 条
  • [1] Rectification properties of carbon nanotube "Y-junctions"
    Andriotis, AN
    Menon, M
    Srivastava, D
    Chernozatonskii, L
    [J]. PHYSICAL REVIEW LETTERS, 2001, 87 (06) : 66802 - 1
  • [2] Transport properties of branched graphene nanoribbons
    Andriotis, Antonis N.
    Menon, Madhu
    [J]. APPLIED PHYSICS LETTERS, 2008, 92 (04)
  • [3] Strong dependence of transport properties of metal-semiconductor-metal graphene ribbons on their geometrical features
    Andriotis, Antonis N.
    Richter, Ernst
    Menon, Madhu
    [J]. APPLIED PHYSICS LETTERS, 2007, 91 (15)
  • [4] Optical properties of two-dimensional zigzag and armchair graphyne nanoribbon semiconductor
    Asadpour, Mohamad
    Jafari, Mahmoud
    Asadpour, Milad
    Jafari, Maryam
    [J]. SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2015, 139 : 380 - 384
  • [6] STRUCTURE-PROPERTY PREDICTIONS FOR NEW PLANAR FORMS OF CARBON - LAYERED PHASES CONTAINING SP2 AND SP ATOMS
    BAUGHMAN, RH
    ECKHARDT, H
    KERTESZ, M
    [J]. JOURNAL OF CHEMICAL PHYSICS, 1987, 87 (11) : 6687 - 6699
  • [7] GENERALIZED MANY-CHANNEL CONDUCTANCE FORMULA WITH APPLICATION TO SMALL RINGS
    BUTTIKER, M
    IMRY, Y
    LANDAUER, R
    PINHAS, S
    [J]. PHYSICAL REVIEW B, 1985, 31 (10): : 6207 - 6215
  • [8] Band Engineering in Graphene with Superlattices of Substitutional Defects
    Casolo, S.
    Martinazzo, R.
    Tantardini, G. F.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2011, 115 (08) : 3250 - 3256
  • [9] Carrier Mobility in Graphyne Should Be Even Larger than That in Graphene: A Theoretical Prediction
    Chen, Jianming
    Xi, Jinyang
    Wang, Dong
    Shuai, Zhigang
    [J]. JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2013, 4 (09): : 1443 - 1448
  • [10] First principles methods using CASTEP
    Clark, SJ
    Segall, MD
    Pickard, CJ
    Hasnip, PJ
    Probert, MJ
    Refson, K
    Payne, MC
    [J]. ZEITSCHRIFT FUR KRISTALLOGRAPHIE, 2005, 220 (5-6): : 567 - 570