Phase coherence in one-dimensional superconductivity by power-law hopping
Abstract
In a one-dimensional (1D) superconductor, zero temperature quantum fluctuations destroy phase coherence. Here we put forward a mechanism which can restore phase coherence: power-law hopping. We study a 1D attractive-U Hubbard model with power-law hopping by Abelian bosonization and density-matrix renormalization group (DMRG) techniques. The parameter that controls the hopping decay acts as the effective, non-integer spatial dimensionality . For real-valued hopping amplitudes we identify analytically a range of parameters for which power-law hopping suppress fluctuations and restore superconducting long-range order for any . A detailed DMRG analysis fully supports these findings. These results are also of direct relevance to quantum magnetism as our model can be mapped onto a S=1/2 XXZ spin-chain with power-law decaying couplings, which can be studied experimentally by cold ion-trap techniques.
Cite
@article{arxiv.1212.6779,
title = {Phase coherence in one-dimensional superconductivity by power-law hopping},
author = {Alejandro M. Lobos and Masaki Tezuka and Antonio M. García-García},
journal= {arXiv preprint arXiv:1212.6779},
year = {2013}
}
Comments
8 pages, 2 figures. New version with new figures, new references, clarified discussion on the variational method and an Appendix for details