Phonon-induced instabilities in correlated electron Hamiltonians
Document Type
Article
Publication Date
6-15-2023
Abstract
Studies of Hamiltonians modeling electron-electron (e-e) and electron-phonon (e-ph) coupling have been fundamental in capturing the novel ordering seen in many quasi-one-dimensional condensed matter systems. Extending such studies to quasi-two-dimensional (2D) systems is of great current interest, as e-ph couplings are predicted to play a major role in the stabilization or enhancement of novel phases in 2D material systems. In this work, we study model systems that describe the interplay between the Hubbard coupling and the phonon modes in the Holstein and Su-Schrieffer-Heeger (SSH) Hamiltonians using the functional renormalization group. For both types of e-ph couplings, we find the predicted charge density wave phases in competition with antiferromagnetic ordering. As the system is doped, the transition shifts, with both orders showing incommensurate peaks. We compare the evolution of the quasiparticle weight for the Holstein model with that of the SSH model as the systems transition from antiferromagnetic to charge-ordered ground states. Finally, we calculate the self-energy of the phonon and capture the impact of charge ordering on the phonon modes.
Publication Source (Journal or Book title)
Physical Review B
Recommended Citation
Yirga, N., Tam, K., & Campbell, D. (2023). Phonon-induced instabilities in correlated electron Hamiltonians. Physical Review B, 107 (23) https://doi.org/10.1103/PhysRevB.107.235120