Defect symmetry influence on electronic transport of zigzag nanoribbons

被引:0
作者
Hui Zeng
Jean-Pierre Leburton
Yang Xu
Jianwei Wei
机构
[1] Yangtze University,College of Physical Science and Technology
[2] University of Illinois at Urbana-Champaign,Beckman Institute for Advanced Science and Technology
[3] University of Illinois at Urbana-Champaign,Department of Electrical and Computer Engineering
[4] University of Illinois at Urbana-Champaign,Department of Physics
[5] Zhejiang University,Department of Information Science and Electronic Engineering
[6] Chongqing University of Technology,College of Mathematics and Physics
来源
Nanoscale Research Letters | / 6卷
关键词
Wave Function; Graphene Nanoribbons; Transport Calculation; Charge Neutrality Point; Conducting Plateau;
D O I
暂无
中图分类号
学科分类号
摘要
The electronic transport of zigzag-edged graphene nanoribbon (ZGNR) with local Stone-Wales (SW) defects is systematically investigated by first principles calculations. While both symmetric and asymmetric SW defects give rise to complete electron backscattering region, the well-defined parity of the wave functions in symmetric SW defects configuration is preserved. Its signs are changed for the highest-occupied electronic states, leading to the absence of the first conducting plateau. The wave function of asymmetric SW configuration is very similar to that of the pristine GNR, except for the defective regions. Unexpectedly, calculations predict that the asymmetric SW defects are more favorable to electronic transport than the symmetric defects configuration. These distinct transport behaviors are caused by the different couplings between the conducting subbands influenced by wave function alterations around the charge neutrality point.
引用
收藏
相关论文
共 208 条
[1]  
Geim AK(2007)The rise of graphene Nat Mater 6 183-191
[2]  
Novoselov KS(2009)The electronic properties of graphene Rev Mod Phys 81 109-162
[3]  
Castro Neto AH(2004)Electric field effect in atomically thin carbon films Science 306 666-669
[4]  
Guinea F(2005)Two-dimensional gas of massless Dirac fermions in graphene Nature 438 197-200
[5]  
Peres NMR(2005)Experimental observation of the quantum Hall effect and Berry's phase in graphene Nature 438 201-204
[6]  
Novoselov KS(2006)Electronic confinement and coherence in patterned epitaxial graphene Science 312 1191-1196
[7]  
Geim AK(2008)Approaching the dirac point in high-mobility multilayer epitaxial graphene Phys Rev Lett 101 267601-493
[8]  
Novoselov KS(2007)Electromechanical resonators from graphene sheets Science 315 490-1473
[9]  
Geim AK(2007)Intrinsic current-voltage characteristics of graphene nanoribbon transistors and effect of edge doping Nano Lett 7 1469-762
[10]  
Morozov SV(2007)Electronic and transport properties of Boron-doped graphene nanoribbons Phys Rev Lett 98 196803-10453