Magnetic structure and magnetic transport characteristics of nanostructures based on armchair-edged graphene nanoribbons

被引:43
|
作者
Zhu, Z. [1 ,2 ]
Zhang, Z. H. [1 ,2 ]
Wang, D. [1 ,2 ]
Deng, X. Q. [1 ,2 ]
Fan, Z. Q. [1 ,2 ]
Tang, G. P. [1 ,2 ]
机构
[1] Changsha Univ Sci & Technol, Inst Nanomat & Nanostruct, Changsha 410114, Hunan, Peoples R China
[2] Changsha Univ Sci & Technol, Hunan Prov Higher Educ Key Lab Modeling & Monitor, Changsha 410114, Hunan, Peoples R China
基金
中国国家自然科学基金;
关键词
ROOM-TEMPERATURE; HALF-METALLICITY; ZIGZAG; MAGNETORESISTANCE;
D O I
10.1039/c5tc01673h
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Exploring half-metallic nanostructures with a high Curie temperature and a wide half-metallic gap is a crucial solution for developing high-performance spintronic devices. Using the first-principles method, we design a new magnetic structure based on edge modification of armchair-edged graphene nanoribbons by Mn and F atoms (AGNR-Mn-F2). It is found that such a structure is an excellent half-metal with a wide bandgap (similar to 1.2 eV) and a stable magnetic ordering by a very high Curie temperature (T-c > 700 K) as well as being predicted to stably exist in a very large chemical potential range in experiment by the Gibbs free energy. And it is also shown that it possesses an outstanding magnetic device nature, such as a spin polarization of 100% in a very large bias region, a dual spin diode-like rectification ratio up to 105, and a spin-valve feature with a giant magnetoresistance approaching 108%, indicating a promising application for developing spintronic devices.
引用
收藏
页码:9657 / 9663
页数:7
相关论文
共 50 条
  • [21] Magnetic structure and Magnetic transport Properties of Graphene Nanoribbons With Sawtooth Zigzag Edges
    Wang, D.
    Zhang, Z.
    Zhu, Z.
    Liang, B.
    SCIENTIFIC REPORTS, 2014, 4
  • [22] Magnetic and thermal characteristics of armchair graphene nanoribbons in the two-band Harrison model
    Mousavi, Hamze
    Jalilvand, Samira
    Mirzaei, Fereshteh
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2019, 469 : 405 - 410
  • [23] First-principles simulations of scanning tunneling microscopy images exhibiting anomalous dot patterns on armchair-edged graphene nanoribbons
    Li, Junhuan
    Inagaki, Kouji
    Arima, Kenta
    PHYSICAL REVIEW RESEARCH, 2024, 6 (01):
  • [24] Anisotropic Etching of Graphite Flakes with Water Vapor to Produce Armchair-Edged Graphene
    Luo, Da
    Yang, Feng
    Wang, Xiao
    Sun, Hao
    Gao, Dongliang
    Li, Ruoming
    Yang, Juan
    Li, Yan
    SMALL, 2014, 10 (14) : 2809 - 2814
  • [25] Magnetic properties of armchair graphene nanoribbons: A Monte Carlo study
    Jabar, A.
    Masrour, R.
    CHINESE JOURNAL OF PHYSICS, 2020, 64 : 1 - 8
  • [26] Enhanced thermoelectric properties of armchair graphene nanoribbons with defects and magnetic field
    Zhao, W.
    Guo, Z. X.
    Cao, J. X.
    Ding, J. W.
    AIP ADVANCES, 2011, 1 (04):
  • [27] Unveiling the Magnetic Structure of Graphene Nanoribbons
    Ribeiro, Rebeca
    Poumirol, Jean-Marie
    Cresti, Alessandro
    Escoffier, Walter
    Goiran, Michel
    Broto, Jean-Marc
    Roche, Stephan
    Raquet, Bertrand
    PHYSICAL REVIEW LETTERS, 2011, 107 (08)
  • [28] Magnetic properties of bilayer graphene armchair nanoribbons: A Monte Carlo study
    Masrour, R.
    Jabar, A.
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2017, 426 : 225 - 229
  • [29] Electronic and magnetic properties of armchair graphene nanoribbons with 558 grain boundary
    Dai, Q. Q.
    Zhu, Y. F.
    Jiang, Q.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2014, 16 (22) : 10607 - 10613
  • [30] Electronic and magnetic structure of graphene nanoribbons
    Palacios, J. J.
    Fernandez-Rossier, J.
    Brey, L.
    Fertig, H. A.
    SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 2010, 25 (03)