Silicon represents a common intrinsic impurity in graphene, bonding to either three or four carbon neighbors, respectively, in a single or double carbon vacancy. We investigate the effect of the latter defect (Si–C4) on the structural and electronic properties of graphene using density functional theory. Calculations based both on molecular models and with periodic boundary conditions have been performed. The two-carbon vacancy was constructed from pyrene (pyrene-2C) which was then expanded to circumpyrene-2C. The structural characterization of these cases revealed that the ground state is slightly non-planar, with the bonding carbons displaced from the plane by up to ±0.2 Å. This non-planar structure was confirmed by embedding the defect into a 10 × 8 supercell of graphene, resulting in 0.22 eV lower energy than the previously considered planar structure. Natural bond orbital analysis showed sp3 hybridization at the silicon atom for the non-planar structure and sp2d hybridization for the planar structure. Atomically resolved electron energy loss spectroscopy and corresponding spectrum simulations provide a mixed picture: a flat structure provides a slightly better overall spectrum match, but a small observed pre-peak is only present in the corrugated simulation. Considering the small energy barrier between the two equivalent corrugated conformations, both structures could plausibly exist as a superposition over the experimental time scale of seconds.
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21 November 2017
Research Article|
November 17 2017
Structure and electronic states of a graphene double vacancy with an embedded Si dopant
Reed Nieman;
Reed Nieman
1
Department of Chemistry and Biochemistry, Texas Tech University
, Lubbock, Texas 79409-1061, USA
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Adélia J. A. Aquino;
Adélia J. A. Aquino
1
Department of Chemistry and Biochemistry, Texas Tech University
, Lubbock, Texas 79409-1061, USA
2
School of Pharmaceutical Sciences and Technology, Tianjin University
, Tianjin 300072, People’s Republic of China
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Trevor P. Hardcastle;
Trevor P. Hardcastle
3
SuperSTEM Laboratory
, STFC Daresbury Campus, Daresbury WA4 4AD, United Kingdom
4
Faculty of Engineering, School of Chemical and Process Engineering, University of Leeds
, 211 Clarendon Rd., Leeds LS2 9JT, United Kingdom
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Jani Kotakoski
;
Jani Kotakoski
5
Faculty of Physics, University of Vienna
, Boltzmanngasse 5, A-1090 Vienna, Austria
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Toma Susi
;
Toma Susi
a)
5
Faculty of Physics, University of Vienna
, Boltzmanngasse 5, A-1090 Vienna, Austria
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Hans Lischka
Hans Lischka
a)
1
Department of Chemistry and Biochemistry, Texas Tech University
, Lubbock, Texas 79409-1061, USA
2
School of Pharmaceutical Sciences and Technology, Tianjin University
, Tianjin 300072, People’s Republic of China
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Reed Nieman
1
Adélia J. A. Aquino
1,2
Trevor P. Hardcastle
3,4
Jani Kotakoski
5
Toma Susi
5,a)
Hans Lischka
1,2,a)
1
Department of Chemistry and Biochemistry, Texas Tech University
, Lubbock, Texas 79409-1061, USA
2
School of Pharmaceutical Sciences and Technology, Tianjin University
, Tianjin 300072, People’s Republic of China
3
SuperSTEM Laboratory
, STFC Daresbury Campus, Daresbury WA4 4AD, United Kingdom
4
Faculty of Engineering, School of Chemical and Process Engineering, University of Leeds
, 211 Clarendon Rd., Leeds LS2 9JT, United Kingdom
5
Faculty of Physics, University of Vienna
, Boltzmanngasse 5, A-1090 Vienna, Austria
a)
Authors to whom correspondence should be addressed: [email protected] and [email protected]
J. Chem. Phys. 147, 194702 (2017)
Article history
Received:
August 10 2017
Accepted:
October 31 2017
Citation
Reed Nieman, Adélia J. A. Aquino, Trevor P. Hardcastle, Jani Kotakoski, Toma Susi, Hans Lischka; Structure and electronic states of a graphene double vacancy with an embedded Si dopant. J. Chem. Phys. 21 November 2017; 147 (19): 194702. https://doi.org/10.1063/1.4999779
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