Superconductivity near two-dimensional Van Hove singularities: a determinant quantum Monte Carlo study
Abstract
The superconducting transition temperature of the two-dimensional attractive Hubbard model is computed in the vicinity of both ordinary (logarithmic) and higher-order (power-law) Van Hove singularities using determinant quantum Monte Carlo simulations. For interaction strengths , where is the electronic bandwidth, is enhanced in the neighborhood of the Van Hove point, albeit more weakly than expected from weak-coupling BCS theory. Enhancing the Van Hove singularity from logarithmic to power-law yields only a minor additional enhancement of . For , the maximum shifts away from the Van Hove point and instead occurs at a density unrelated to any features in the non-interacting density of states, consistent with a strong-coupling interpretation. We find that the maximal in the model is achieved at intermediate and at a density away from the Van Hove point.
Cite
@article{arxiv.2604.13161,
title = {Superconductivity near two-dimensional Van Hove singularities: a determinant quantum Monte Carlo study},
author = {Gustav Romare and Daniel Shaffer and Alex Levchenko and Edwin Huang and Ilya Esterlis},
journal= {arXiv preprint arXiv:2604.13161},
year = {2026}
}
Comments
8 pages, 9 figures + supplemental material