The influence by substrate morphology on the Rashba band splitting in graphene

被引:1
作者
Bayani, Amirhossein [1 ]
Kishore, M. R. Ashwin [1 ]
Larsson, Karin [1 ]
机构
[1] Uppsala Univ, Dept Chem, Angstrom Lab, Uppsala, Sweden
关键词
Graphene; Substrate morphology; Spin-orbit coupling; Rashba effect; DFT; Hybridization; Spin components; BSSE;
D O I
10.1016/j.rinp.2020.103065
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The influence of substrate morphology on the Rashba band splitting at the Dirac point of graphene, has been theoretically investigated. More specifically, the possibility for this splitting to be caused by spin-orbit coupling (with the heavy metal substrate) was of a special interest to study. The model system consisted of a 4H-SiC (0 0 0 1)/graphene interface, with an intercalated metal layer (Ag and Au, respectively). These intercalating metal layers were built with two different types of morphologies; either flat or buckled (with different buckling positions). The results show that depending on the position of the buckled metal atom, the size of the bandgap and band splitting (at the Dirac point of graphene) will either increase (or decrease). Moreover, the enlargement of the buckling size was also shown to affect the electronic properties of graphene (i.e., by increasing the bandgap). The sizes of the bandgaps and band splitting for the different intercalating metals (Ag and Au), were also found to be different. Spin-projected band structures was also implemented in the present study, with the purpose to show the spin-texture of graphene. It was thereby shown that the spins pined to the x and y spin components for most of the cases.
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页数:6
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共 28 条
[1]   Spin-orbit proximity effect in graphene [J].
Avsar, A. ;
Tan, J. Y. ;
Taychatanapat, T. ;
Balakrishnan, J. ;
Koon, G. K. W. ;
Yeo, Y. ;
Lahiri, J. ;
Carvalho, A. ;
Rodin, A. S. ;
O'Farrell, E. C. T. ;
Eda, G. ;
Castro Neto, A. H. ;
Oezyilmaz, B. .
NATURE COMMUNICATIONS, 2014, 5
[2]   Toward Wafer Scale Fabrication of Graphene Based Spin Valve Devices [J].
Avsar, Ahmet ;
Yang, Tsung-Yeh ;
Bae, Sukang ;
Balakrishnan, Jayakumar ;
Volmer, Frank ;
Jaiswal, Manu ;
Yi, Zheng ;
Ali, Syed Rizwan ;
Guentherodt, Gernot ;
Hong, Byung Hee ;
Beschoten, Bernd ;
Oezyilmaz, Barbaros .
NANO LETTERS, 2011, 11 (06) :2363-2368
[3]   The morphology of an intercalated Au layer with its effect on the Dirac point of graphene [J].
Bayani, Amirhossein ;
Larsson, Karin .
SCIENTIFIC REPORTS, 2020, 10 (01)
[4]   CALCULATION OF SMALL MOLECULAR INTERACTIONS BY DIFFERENCES OF SEPARATE TOTAL ENERGIES - SOME PROCEDURES WITH REDUCED ERRORS [J].
BOYS, SF ;
BERNARDI, F .
MOLECULAR PHYSICS, 1970, 19 (04) :553-&
[5]   Spin-orbit coupling in graphene induced by adatoms with outer-shell p orbitals [J].
Brey, Luis .
PHYSICAL REVIEW B, 2015, 92 (23)
[6]   Gate-tunable exchange coupling between cobalt clusters on graphene [J].
Chen, Hua ;
Niu, Qian ;
Zhang, Zhenyu ;
MacDonald, Allan H. .
PHYSICAL REVIEW B, 2013, 87 (14)
[7]   Electronic structures of an epitaxial graphene monolayer on SiC(0001) after gold intercalation: a first-principles study [J].
Chuang, Feng-Chuan ;
Lin, Wen-Huan ;
Huang, Zhi-Quan ;
Hsu, Chia-Hsiu ;
Kuo, Chien-Cheng ;
Ozolins, Vidvuds ;
Yeh, V. .
NANOTECHNOLOGY, 2011, 22 (27)
[8]  
Fei X, 2015, J PHYS CHEM C, V119, P9839
[9]   Semiempirical GGA-type density functional constructed with a long-range dispersion correction [J].
Grimme, Stefan .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2006, 27 (15) :1787-1799
[10]   Evidence for a quantum spin Hall phase in graphene decorated with Bi2Te3 nanoparticles [J].
Hatsuda, K. ;
Mine, H. ;
Nakamura, T. ;
Li, J. ;
Wu, R. ;
Katsumoto, S. ;
Haruyama, J. .
SCIENCE ADVANCES, 2018, 4 (11)