The effect of nearest neighbor spin-singlet correlations in conventional graphene SNS Josephson junctions
arXiv:0810.4890 · doi:10.1103/PhysRevB.79.064502
Abstract
Using the self-consistent tight-binding Bogoliubov-de Gennes formalism we have studied the effect of nearest neighbor spin-singlet bond (SB) correlations on Josephson coupling and proximity effect in graphene SNS Josephson junctions with conventional s-wave superconducting contacts. Despite the s-wave superconducting state in the contacts, the SB pairing state inside the junction has d-wave symmetry and clean, sharp interface junctions resemble a 'bulk-meets-bulk' situation with very little interaction between the two different superconducting states. In fact, due to a finite-size suppression of the superconducting state, a stronger SB coupling constant than in the bulk is needed in order to achieve SB pairing in a junction. For both short clean zigzag and armchair junctions a d-wave state that has a zero Josephson coupling to the s-wave state is chosen and therefore the Josephson current decreases when a SB pairing state develops in these junctions. In more realistic junctions, with smoother doping profiles and atomic scale disorder at the interfaces, it is possible to achieve some coupling between the contact s-wave state and the SB d-wave states. In addition, by breaking the appropriate lattice symmetry at the interface in order to induce another d-wave state, a non-zero Josephson coupling can be achieved which leads to a substantial increase in the Josephson current. We also report on the LDOS of the junctions and on a lack of zero energy states at interfaces despite the unconventional order parameters, which we attribute to the near degeneracy of the two d-wave solutions and their mixing at a general interface.
13 pages, 9 figures. Typos corrected
References in corpus (14)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Bipolar supercurrent in graphene
- Specular Andreev reflection in graphene
- Superconducting states of pure and doped graphene
- Josephson effect in ballistic graphene
- Josephson Current and Multiple Andreev Reflections in Graphene SNS Junctions
- Density waves and Cooper pairing on the honeycomb lattice
- Resonating valence bonds and mean-field d-wave superconductivity in graphite
- A Defective Graphene Phase Predicted to be a Room Temperature Ferromagnetic Semiconductor
- BCS-BEC crossover on the two-dimensional honeycomb lattice
- Proximity Induced Superconductivity and Multiple Andreev Reflections in Few-Layer-Graphene
- Self-consistent solution for proximity effect and Josephson current in ballistic graphene SNS Josephson junctions
- d+id'-wave Superconducting States in Graphene
Cited by in corpus (8)
- Chiral d-wave superconductivity in doped graphene
- Edge properties of the chiral d-wave superconducting state in doped graphene
- Josephson current in graphene: the role of unconventional pairing symmetries
- Triplet proximity effect and odd-frequency pairing in graphene
- The possibility of measuring intrinsic electronic correlations in graphene using a d-wave contact Josephson junction
- Inhomogeneous superconductivity in the presence of time-reversal symmetry
- Chiral d-wave superconducting state in the core of a doubly quantized s-wave vortex in graphene
- Superconducting proximity effect in flat band systems