Sulfur dioxide adsorbed on graphene and heteroatom-doped graphene: a first-principles study
The adsorption of sulfur dioxide (SO 2 ) on intrinsic graphene and heteroatom-doped (B, N, Al, Si, Cr, Mn, Ag, Au, and Pt) graphene samples was theoretically studied using first-principles approach based on density functional theory to exploit their potential applications as SO 2 gas sensors. The st...
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Veröffentlicht in: | The European physical journal. B, Condensed matter physics Condensed matter physics, 2013-02, Vol.86 (2), Article 54 |
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Hauptverfasser: | , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | The adsorption of sulfur dioxide (SO
2
) on intrinsic graphene and heteroatom-doped (B, N, Al, Si, Cr, Mn, Ag, Au, and Pt) graphene samples was theoretically studied using first-principles approach based on density functional theory to exploit their potential applications as SO
2
gas sensors. The structural and electronic properties of the graphene-molecule adsorption adducts are strongly dependent on the dopants. SO
2
molecule is adsorbed weakly on intrinsic graphene, and B-, N-doped graphene; in general, strong chemisorption is observed on Al-, Si-, Cr-, Mn-, Ag-, Au-, and Pt-doped graphene. The adsorption mechanisms are discussed from charge transfers and density of states. This work reveals that the sensitivity of graphene-based chemical gas sensors for SO
2
can be drastically improved by introducing appropriate dopant, and Cr, as well as Mn, may be the best choices among all the dopants. |
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ISSN: | 1434-6028 1434-6036 |
DOI: | 10.1140/epjb/e2012-30853-y |