Negative differential resistance devices by using N-doped graphene nanoribbons

被引:28
|
作者
Huang, Jing [1 ,2 ]
Wang, Weiyi [2 ]
Li, Qunxiang [2 ]
Yang, Jinlong [2 ,3 ]
机构
[1] Anhui Jianzhu Univ, Sch Mat & Chem Engn, Hefei 230601, Anhui, Peoples R China
[2] Univ Sci & Technol China, Hefei Natl Lab Phys Sci Microscale, Hefei 230026, Anhui, Peoples R China
[3] Univ Sci & Technol China, Synerget Innovat Ctr Quantum Informat & Quantum P, Hefei 230026, Anhui, Peoples R China
来源
JOURNAL OF CHEMICAL PHYSICS | 2014年 / 140卷 / 16期
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
SINGLE-MOLECULE JUNCTIONS; ORGANIC-MOLECULES; TRANSPORT; SPECTROSCOPY; CONDUCTANCE; SOLVENTS;
D O I
10.1063/1.4871739
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Recently, extensive efforts have been devoted to the investigations of negative differential resistance (NDR) behavior in graphene. Here, by performing fully self-consistent density functional theory calculations combined with non-equilibrium Green's function technique, we investigate the transport properties of three molecules from conjugated molecule, one-dimension alkane chain, and single molecule magnet, which are sandwiched between two N-doped zigzag and armchair graphene nanoribbons (GNRs). We observe robust NDR effect in all examined molecular junctions including benzene, alkane, and planar four-coordinated Fe complex. Through the analyses of the calculated electronic structures and the bias-dependent transmission coefficients, we find that the narrow density of states of N-doped GNRs and the bias-dependent effective coupling between the discrete frontier molecular orbitals and the subbands of N-doped GNRs are responsible for the observed NDR phenomenon. These theoretical findings imply that N-doped GNRs hold great potential for building NDR devices based on various molecules. (C) 2014 AIP Publishing LLC.
引用
收藏
页数:7
相关论文
共 50 条
  • [1] Negative differential resistance behaviour in N-doped crossed graphene nanoribbons
    陈灵娜
    马松山
    欧阳方平
    伍小赞
    肖金
    徐慧
    Chinese Physics B, 2010, 19 (09) : 535 - 539
  • [2] Negative differential resistance behaviour in N-doped crossed graphene nanoribbons
    Chen Ling-Na
    Ma Song-Shan
    Ouyang Fang-Ping
    Wu Xiao-Zan
    Xiao Jin
    Xu Hui
    CHINESE PHYSICS B, 2010, 19 (09)
  • [3] Negative Differential Resistance in Doped Armchair Graphene Nanoribbons
    Liu, Chunmei
    Wang, Junling
    Li, Zhuan
    Wang, Yang
    Zhao, Lili
    PROCEEDINGS OF THE 2016 INTERNATIONAL CONFERENCE ON AUTOMATIC CONTROL AND INFORMATION ENGINEERING (ICACIE), 2016, 64 : 40 - 43
  • [4] Origins of Negative Differential Resistance in N-doped ZnO Nanoribbons: Ab-initio Investigation
    Shaheen, Alaa
    Ali, Muhammad
    Othman, Wael
    Tit, Nacir
    SCIENTIFIC REPORTS, 2019, 9 (1)
  • [5] Spin negative differential resistance in edge doped zigzag graphene nanoribbons
    Wang, X.-F. (wxf@suda.edu.cn), 1600, Elsevier Ltd (68):
  • [6] Spin negative differential resistance in edge doped zigzag graphene nanoribbons
    Jiang, Chao
    Wang, Xue-Feng
    Zhai, Ming-Xing
    CARBON, 2014, 68 : 406 - 412
  • [7] Spin negative differential resistance in edge doped zigzag graphene nanoribbons
    Jiang, Chao
    Wang, Xue-Feng
    Zhai, Ming-Xing
    Carbon, 2013, 68 : 406 - 412
  • [8] Negative differential resistance and rectifying performance induced by doped graphene nanoribbons p-n device
    Zhou, Yuhong
    Qiu, Nianxiang
    Li, Runwei
    Guo, Zhansheng
    Zhang, Jian
    Fang, Junfeng
    Huang, Aisheng
    He, Jian
    Zha, Xianhu
    Luo, Kan
    Yin, Jingshuo
    Li, Qiuwu
    Bai, Xiaojing
    Huang, Qing
    Du, Shiyu
    PHYSICS LETTERS A, 2016, 380 (9-10) : 1049 - 1055
  • [9] Negative differential resistance in bilayer graphene nanoribbons
    Habib, K. M. Masum
    Zahid, Ferdows
    Lake, Roger K.
    APPLIED PHYSICS LETTERS, 2011, 98 (19)
  • [10] N-Doped Zigzag Graphene Nanoribbons For Nanoscale Interconnects
    Agrawal, Sonal
    Srivastava, Anurag
    Kaushal, Gaurav
    PROCEEDINGS OF THE 2020 IEEE 10TH INTERNATIONAL CONFERENCE ON NANOMATERIALS: APPLICATIONS & PROPERTIES (NAP-2020), 2020,