Resonating valence bonds and mean-field d-wave superconductivity in graphite

被引:234
作者
Black-Schaffer, Annica M. [1 ]
Doniach, Sebastian
机构
[1] Stanford Univ, Dept Appl Phys, Stanford, CA 94305 USA
[2] Stanford Univ, Dept Phys, Stanford, CA 94305 USA
[3] Stanford Univ, Dept Appl Phys, Stanford, CA 94305 USA
关键词
D O I
10.1103/PhysRevB.75.134512
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We investigate the possibility of inducing superconductivity in a graphite layer by electronic correlation effects. We use a phenomenological microscopic Hamiltonian which includes nearest-neighbor hopping and an interaction term which explicitly favors nearest-neighbor spin singlets through the well-known resonance valence bond (RVB) character of planar organic molecules. Treating this Hamiltonian in mean-field theory, allowing for bond-dependent variation of the RVB order parameter, we show that both s- and d-wave superconducting states are possible. The d-wave solution belongs to a two-dimensional representation and breaks time-reversal symmetry. At zero doping there exists a quantum critical point at the dimensionless coupling J/t=1.91 and the s- and d-wave solutions are degenerate for low temperatures. At finite doping the d-wave solution has a significantly higher T-c than the s-wave solution. By using density functional theory we show that the doping induced from sulfur absorption on a graphite layer is enough to cause an electronically driven d-wave superconductivity at graphite-sulfur interfaces. We also discuss applying our results to the case of the intercalated graphites, as well as the validity of a mean-field approach.
引用
收藏
页数:10
相关论文
共 50 条
[41]   D-wave superconductivity and raman shifts [J].
Nicol, E.J. ;
Jiang, C. ;
Carbotte, J.P. .
Nature, 1993, 366 (6457)
[42]   SUPEREXCHANGE MECHANISM AND D-WAVE SUPERCONDUCTIVITY [J].
KOTLIAR, G ;
LIU, JL .
PHYSICAL REVIEW B, 1988, 38 (07) :5142-5145
[43]   MEAN-FIELD SUPERCONDUCTIVITY IN A STRONG MAGNETIC-FIELD [J].
NORMAN, MR ;
AKERA, H ;
MACDONALD, AH .
PHYSICA C, 1992, 196 (1-2) :43-47
[44]   Infrared and electronic Raman response of coexisting d-wave density wave and d-wave superconductivity [J].
A. Ványolos ;
B. Dóra ;
A. Virosztek .
The European Physical Journal B, 2010, 77 :65-75
[45]   Infrared and electronic Raman response of coexisting d-wave density wave and d-wave superconductivity [J].
Vanyolos, A. ;
Dora, B. ;
Virosztek, A. .
EUROPEAN PHYSICAL JOURNAL B, 2010, 77 (01) :65-75
[46]   Resonating mean-field theoretical approach to shape coexistence in nuclei [J].
Ohnishi, H. ;
da Providencia, J. ;
Nishiyama, S. .
CONDENSED MATTER THEORIES, VOL 21, 2007, 21 :395-+
[47]   Analysis and computation of a mean-field model for superconductivity [J].
Du, Q ;
Gunzburger, MD ;
Lee, HK .
NUMERISCHE MATHEMATIK, 1999, 81 (04) :539-560
[48]   Analysis and computation of a mean-field model for superconductivity [J].
Qiang Du ;
Max D. Gunzburger ;
Hyesuk Kwon Lee .
Numerische Mathematik, 1999, 81 :539-560
[49]   Superconductivity in CoO2 layers and the resonating valence bond mean-field theory of the triangular lattice t-J model -: art. no. 104508 [J].
Kumar, B ;
Shastry, BS .
PHYSICAL REVIEW B, 2003, 68 (10)
[50]   Spin Peierls order and d-wave superconductivity [J].
Bhattacharyya, P .
STRIPES AND RELATED PHENOMENA, 2000, :355-359