The Holstein model on a square lattice at half-filling has a well-established finite temperature phase transition to an insulating state with long range charge density wave (CDW) order. Because this CDW formation suppresses pairing, a superconducting (SC) phase emerges only with doping. In this work, we study the effects of dilution of the local phonon degrees of freedom in the Holstein model while keeping the system at half filling. We find not only that the CDW remains present up to a dilution fraction f∼0.15, but also that long range pairing is stabilized with increasing f, resulting in a {\it supersolid} regime centered at f≈0.10, where long range diagonal and off-diagonal correlations coexist. Further dilution results in a purely SC phase, and ultimately in a normal metal. Our results provide a new route to the supersolid phase via the introduction of impurities at fixed positions which both increase quantum fluctuations and also are immune to the competing tendency to phase separation often observed in the doped case.
@article{arxiv.2407.02239,
title = {Supersolid Phase in the Diluted Holstein Model},
author = {Jingyao Meng and Yuxi Zhang and Rafael M. Fernandes and Tianxing Ma and R. T. Scalettar},
journal= {arXiv preprint arXiv:2407.02239},
year = {2024}
}
Comments
11 pages and 11 figures. Accepted for publication as a Letter in Physical Review B