Title of article :
Adsorption of Na on intrinsic, B-doped, N-doped and vacancy graphenes: A first-principles study
Author/Authors :
Yao، نويسنده , , Li-hua and Cao، نويسنده , , Mao-Sheng and Yang، نويسنده , , Huijing and Liu، نويسنده , , Xiao-Juan and Fang، نويسنده , , Xiao-Yong and Yuan، نويسنده , , Jie، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Pages :
7
From page :
179
To page :
185
Abstract :
We investigate the adsorption of Na atoms on intrinsic graphene and three types of doped graphenes using the first-principles method of density functional theory combined with the pseudopotential approximation. The results indicate that three types of graphenes, i.e. doped with B and N to replace C atoms, and with vacancies by removing C atoms, exhibit prodigious differences from the intrinsic graphene in terms of the adsorption energy, electronic structure and Na storage capacity on graphene. The adsorption energies of Na on B-doped and vacancy graphenes are −1.93 eV and −2.46 eV, respectively, which are about 2.7 times and 3.4 times that of Na on the intrinsic graphene −0.71 eV, while the adsorption energy of Na on N-doped graphene is only −0.27 eV. The orbital hybridizations can be observed in the B-doped and vacancy graphenes, while there is no obvious orbital hybridization in the N-doped graphene as well as the intrinsic graphene. Each B and each vacancy in the graphene could adsorb up to three and five Na atoms, respectively. The Na storage capacity of intrinsic graphene is weak, while that of N-doped graphene is weaker. B-doped and vacancy graphenes are expected to be novel materials for storing Na atoms.
Keywords :
Sodium adsorption , Doped graphene , Vacancy graphene , First-principles study
Journal title :
Computational Materials Science
Serial Year :
2014
Journal title :
Computational Materials Science
Record number :
1692565
Link To Document :
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