Two-Dopant Origin of Competing Stripe and Pair Formation in Hubbard and t−J Models
Tizian Blatz, Ulrich Schollwöck, Fabian Grusdt, Annabelle Bohrdt
DOI 10.1103/dpfl-12st · Physical Review X
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
Understanding the physics of the two-dimensional Hubbard model is widely believed to be a key step in achieving a full understanding of high-Tc cuprate superconductors. In recent years, progress has been made by large-scale numerical simulations at finite doping and, on the other hand, by microscopic theories able to capture the physics of individual charge carriers. In this work, we study single pairs of dopants in a cylindrical system using the density-matrix renormalization group algorithm. We identify two coexisting charge configurations that couple to the spin environment in different ways: a tightly bound configuration featuring (next-)nearest-neighbor pairs and a stripelike configuration of dopants on opposite sides of the cylinder, accompanied by a spin domain wall. Thus, we establish that the interplay between stripe order and uniform pairing, central to the models’ phases at finite doping, has its origin at the single-pair level. By interpolating between the Hubbard and the related t−J model, we are able to quantitatively understand discrepancies in the pairing properties of the two models through the three-site hopping term usually omitted from the t−J Hamiltonian. This term is closely related to a next-nearest-neighbor tunneling t′, which we observe to upset the balance between the competing stripe and pair states on the two-dopant level.
Similar papers
Competition between d-wave superconductivity and antiferromagnetism in the two-dimensional Hubbard model
similarity 0.90M. Capone & G. Kotliar
Source status unknown — claims are unverified
Effective pairing interaction in the two-dimensional Hubbard model within a spin rotationally invariant approach
similarity 0.89V. A. Apinyan & T. K. Kopec · 2008 · arXiv:0812.1461
Source status unknown — claims are unverified
Pairing in the Two-Dimensional Hubbard Model from Weak to Strong Coupling
similarity 0.89Astrid T. Rømer et al. · 2019 · arXiv:1909.00627
Source status unknown — claims are unverified
Metallic and insulating stripes and their relation with superconductivity in the doped Hubbard model
similarity 0.89Luca F. Tocchio et al. · 2019 · arXiv:1905.02658
Source status unknown — claims are unverified
Exploration of doped quantum magnets with ultracold atoms
similarity 0.89Annabelle Bohrdt et al. · 2021 · arXiv:2107.08043
Source status unknown — claims are unverified
Magnetic-texture-driven charge pairing in the spin-fermion Hubbard model and superconductivity in the high-Tc cuprates
similarity 0.89Eduardo C. Marino & M. B. Silva Neto
Source status unknown — claims are unverified