Vortex in holographic two-band superfluid/superconductor
arXiv:1511.01325 · doi:10.1007/JHEP05(2016)011
Abstract
We construct numerically static vortex solutions in a holographic model of two-band superconductor with an interband Josephson coupling in both the superfluid and superconductor regime. We investigate the effects of the interband coupling on the order parameter of each superconducting band in the vortex solution, and we find that it is different for each of the two bands. We compute also the free energy, critical magnetic field, magnetic penetration length and coherence lengths for the two bands, and we study their dependence on the interband coupling and temperature. Interestingly, we find that the coherence lengths of the two bands are close to identical.
15 pages, 10 figures, v3. major revision, match with journal version
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- Giant vortex in a fast rotating holographic superfluid
- Fractional and Integer Vortex Dynamics in Strongly Coupled Two-component Bose-Einstein Condensates from AdS/CFT Correspondence
- Zero Temperature Holographic Superfluids with Two Competing Orders
- Baby Skyrmion in two-component holographic superfluids
- Multicomponent Superfluids and Superconductors in Dense Nuclear and Quark Matter