TY - JOUR
T1 - Magnetotransport Properties of Graphene Nanoribbons with Zigzag Edges
AU - Wu, Shuang
AU - Liu, Bing
AU - Shen, Cheng
AU - Li, Si
AU - Huang, Xiaochun
AU - Lu, Xiaobo
AU - Chen, Peng
AU - Wang, Guole
AU - Wang, Duoming
AU - Liao, Mengzhou
AU - Zhang, Jing
AU - Zhang, Tingting
AU - Wang, Shuopei
AU - Yang, Wei
AU - Yang, Rong
AU - Shi, Dongxia
AU - Watanabe, Kenji
AU - Taniguchi, Takashi
AU - Yao, Yugui
AU - Wang, Weihua
AU - Zhang, Guangyu
N1 - Publisher Copyright:
© 2018 American Physical Society.
PY - 2018/5/22
Y1 - 2018/5/22
N2 - The determination of the electronic structure by edge geometry is unique to graphene. In theory, an evanescent nonchiral edge state is predicted at the zigzag edges of graphene. Up to now, the approach used to study zigzag-edged graphene has mostly been limited to scanning tunneling microscopy. The transport properties have not been revealed. Recent advances in hydrogen plasma-assisted "top-down" fabrication of zigzag-edged graphene nanoribbons (Z-GNRs) have allowed us to investigate edge-related transport properties. In this Letter, we report the magnetotransport properties of Z-GNRs down to ∼70 nm wide on an h-BN substrate. In the quantum Hall effect regime, a prominent conductance peak is observed at Landau ν=0, which is absent in GNRs with nonzigzag edges. The conductance peak persists under perpendicular magnetic fields and low temperatures. At a zero magnetic field, a nonlocal voltage signal, evidenced by edge conduction, is detected. These prominent transport features are closely related to the observable density of states at the hydrogen-etched zigzag edge of graphene probed by scanning tunneling spectroscopy, which qualitatively matches the theoretically predicted electronic structure for zigzag-edged graphene. Our study gives important insights for the design of new edge-related electronic devices.
AB - The determination of the electronic structure by edge geometry is unique to graphene. In theory, an evanescent nonchiral edge state is predicted at the zigzag edges of graphene. Up to now, the approach used to study zigzag-edged graphene has mostly been limited to scanning tunneling microscopy. The transport properties have not been revealed. Recent advances in hydrogen plasma-assisted "top-down" fabrication of zigzag-edged graphene nanoribbons (Z-GNRs) have allowed us to investigate edge-related transport properties. In this Letter, we report the magnetotransport properties of Z-GNRs down to ∼70 nm wide on an h-BN substrate. In the quantum Hall effect regime, a prominent conductance peak is observed at Landau ν=0, which is absent in GNRs with nonzigzag edges. The conductance peak persists under perpendicular magnetic fields and low temperatures. At a zero magnetic field, a nonlocal voltage signal, evidenced by edge conduction, is detected. These prominent transport features are closely related to the observable density of states at the hydrogen-etched zigzag edge of graphene probed by scanning tunneling spectroscopy, which qualitatively matches the theoretically predicted electronic structure for zigzag-edged graphene. Our study gives important insights for the design of new edge-related electronic devices.
UR - http://www.scopus.com/inward/record.url?scp=85047486075&partnerID=8YFLogxK
U2 - 10.1103/PhysRevLett.120.216601
DO - 10.1103/PhysRevLett.120.216601
M3 - Article
C2 - 29883135
AN - SCOPUS:85047486075
SN - 0031-9007
VL - 120
JO - Physical Review Letters
JF - Physical Review Letters
IS - 21
M1 - 216601
ER -