中文版 | English
Title

Electronic Transport Through Graphene Nanoribbons with Stone-Wales Reconstruction at Edges and Interfaces

Author
Corresponding AuthorZhang, Guiping; Wang, Xiaoqun
Publication Years
2016-08
DOI
Source Title
ISSN
1533-4880
EISSN
1533-4899
Volume16Issue:8Pages:8083-8089
Abstract

In this paper, we study the conductance of the graphene nanoribbons (GNRs) in the presence of the Stone-Wales (S-W) reconstruction, using the transfer matrix method. The ribbon is connected with semi-infinite quantum wires as the leads. The S-W reconstruction occurs on the edges and the interfaces between the electrodes and ribbon. When the reconstruction occurs on the edges, the conductance is suppressed considerably if the gate voltage V-g takes intermediate values around vertical bar V-g vertical bar t(0) (t(0) being the hopping amplitude of graphene) in both positive and negative energy regions. In contrast, if V-g is close to the Dirac point or the band edges, the conductance is relatively insensitive to the edge reconstruction. The effect of edge reconstruction become less important with increasing ribbon width as expected. The S-W reconstruction occurs also possibly at the interfaces. In this case, the reconstruction suppresses identically the conductance in the entire range of V-g for armchair GNRs. For the zigzag GNRs, the conductance is strongly suppressed in the negative energy region, however the change of the conductance is relatively small in the positive energy region. We also analyze the transmission coefficients as functions of the channel index (the transverse momentum k(y) of the leads) for the neutral armchair GNRs with interface defects. Interestingly, there are two transmission peaks appearing at k(y) = 2 pi/3 and k(y) = pi/3 due to the unit cell doubling.

Keywords
URL[Source Record]
Indexed By
SCI ; EI
Language
English
SUSTech Authorship
Others
Funding Project
NSF of China[11174363] ; NSF of China[11204372] ; NSF of China[11374135]
WOS Research Area
Chemistry ; Science & Technology - Other Topics ; Materials Science ; Physics
WOS Subject
Chemistry, Multidisciplinary ; Nanoscience & Nanotechnology ; Materials Science, Multidisciplinary ; Physics, Applied ; Physics, Condensed Matter
WOS Accession No
WOS:000387083900047
Publisher
EI Accession Number
20163002639133
EI Keywords
Graphene ; Point Defects ; Semiconductor Quantum Wires ; Transfer Matrix Method
ESI Classification Code
Semiconductor Devices And Integrated Circuits:714.2 ; Nanotechnology:761 ; Mathematics:921 ; Crystal Lattice:933.1.1
Data Source
Web of Science
Citation statistics
Cited Times [WOS]:3
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/29543
DepartmentDepartment of Physics
Affiliation
1.Renmin Univ China, Dept Phys, Beijing 100872, Peoples R China
2.South Univ Sci & Technol China, Dept Phys, Shenzhen 518055, Peoples R China
3.Renmin Univ China, Beijing Lab Optoelect Funct Mat & Micronano Devic, Beijing 100872, Peoples R China
4.Shanghai Jiao Tong Univ, Dept Phys & Astron, Shanghai 200240, Peoples R China
5.Collaborat Innovat Ctr Adv Microstruct, Nanjing 210093, Jiangsu, Peoples R China
Recommended Citation
GB/T 7714
Wang, Jing,Zhang, Guiping,Ye, Fei,et al. Electronic Transport Through Graphene Nanoribbons with Stone-Wales Reconstruction at Edges and Interfaces[J]. J NANOSCI NANOTECHNO,2016,16(8):8083-8089.
APA
Wang, Jing,Zhang, Guiping,Ye, Fei,&Wang, Xiaoqun.(2016).Electronic Transport Through Graphene Nanoribbons with Stone-Wales Reconstruction at Edges and Interfaces.J NANOSCI NANOTECHNO,16(8),8083-8089.
MLA
Wang, Jing,et al."Electronic Transport Through Graphene Nanoribbons with Stone-Wales Reconstruction at Edges and Interfaces".J NANOSCI NANOTECHNO 16.8(2016):8083-8089.
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