TY - JOUR
T1 - Weak localization in bilayer graphene with Li-intercalation/desorption
AU - Endo, Y.
AU - Ichinokura, S.
AU - Akiyama, R.
AU - Takayama, A.
AU - Sugawara, K.
AU - Nomura, K.
AU - Takahashi, T.
AU - Hasegawa, S.
N1 - Funding Information:
This work was supported by JSPS KAKENHI Grant Numbers JP16H02108, JP16H00983, JP15H05854, JP25110010, JP15H02105, JP25107003, JP15K17464 and the Program for Key Interdisciplinary Research, Tohoku University.
Publisher Copyright:
© 2018 IOP Publishing Ltd.
PY - 2018/7/2
Y1 - 2018/7/2
N2 - We performed in-situ electrical transport measurements for bilayer graphene grown on SiC(0 0 0 1) substrate, Li-intercalated bilayer graphene, and after that desorbing Li atoms by heating. Bilayer graphene after desorbing intercalated Li atoms showed a higher resistivity and different behavior in magnetoconductance compared to pristine bilayer graphene. We observed the weak localization of carriers at low temperatures in all the three samples and analyzed the experimental results with the extended Hikami-Larkin-Nagaoka equation to investigate the transport properties. The result shows that the magnetoconductance of pristine bilayer graphene is described by the AB stacking structure model and the phase breaking scattering is dominated by the electron-electron scattering. The intra-valley scattering occurs most frequently probably due to dopants in SiC substrate. However, in Li-desorbed graphene, the magnetoconductance can be described by neither AB nor AA-stacking model, suggesting the coexistence of domains with several different stacking structures.
AB - We performed in-situ electrical transport measurements for bilayer graphene grown on SiC(0 0 0 1) substrate, Li-intercalated bilayer graphene, and after that desorbing Li atoms by heating. Bilayer graphene after desorbing intercalated Li atoms showed a higher resistivity and different behavior in magnetoconductance compared to pristine bilayer graphene. We observed the weak localization of carriers at low temperatures in all the three samples and analyzed the experimental results with the extended Hikami-Larkin-Nagaoka equation to investigate the transport properties. The result shows that the magnetoconductance of pristine bilayer graphene is described by the AB stacking structure model and the phase breaking scattering is dominated by the electron-electron scattering. The intra-valley scattering occurs most frequently probably due to dopants in SiC substrate. However, in Li-desorbed graphene, the magnetoconductance can be described by neither AB nor AA-stacking model, suggesting the coexistence of domains with several different stacking structures.
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U2 - 10.1088/1361-648X/aaccc4
DO - 10.1088/1361-648X/aaccc4
M3 - Article
C2 - 29901452
AN - SCOPUS:85049885032
SN - 0953-8984
VL - 30
JO - Journal of Physics Condensed Matter
JF - Journal of Physics Condensed Matter
IS - 30
M1 - 305701
ER -