English

Bootstrap Embedding for Interacting Electrons in Phonon Coherent-state Mean Field

Strongly Correlated Electrons 2026-03-31 v1 Computational Physics

Abstract

We develop a fermi-bose bootstrap embedding (fb-BE) framework for the ground state of interacting elec- trons coupled to phonon mean field. The method combines bootstrap embedding for correlated electrons with a self-consistent coherent-state mean-field treatment for phonons. This method models the interacting electron-phonon problem as a system of correlated electrons traveling in a self-consistently specified potential landscape, allowing for efficient treatment of large lattice systems. Convergence of the methods for frag- ment size and total system size are demonstrated for one-dimensional Hubbard-Holstein model for up to 350 sites. Finite-size scaling is performed to extrapolate to infinite system size. Benchmarking against density matrix renormalization group for small 8-site system at half- and quarter-filling shows orders-of-magnitude runtime advantage. The comparison further reveals that the method performs best in regimes dominated by localization, such as the Mott insulating phase and the strong-coupling tiny polaron regime, where the local embedding ansatz is still valid. However, due to the mean-field treatment for phonons, we find limitations of our methods in the weakly coupled delocalized region and at the Peierls transition, where quantum phonon fluctuations and long-range kinetic correlations become substantial.

Keywords

Cite

@article{arxiv.2603.11463,
  title  = {Bootstrap Embedding for Interacting Electrons in Phonon Coherent-state Mean Field},
  author = {Shariful Islam and Joel Bierman and Yuan Liu},
  journal= {arXiv preprint arXiv:2603.11463},
  year   = {2026}
}
R2 v1 2026-07-01T11:15:49.518Z