English

Single-hole wave function in two dimensions: A case study of the doped Mott insulator

Strongly Correlated Electrons 2019-07-04 v2 Superconductivity

Abstract

We study a ground-state ansatz for the single-hole doped tt-JJ model in two dimensions via a variational Monte Carlo (VMC) method. Such a single-hole wave function possesses finite angular momenta generated by hidden spin currents, which give rise to a novel ground state degeneracy in agreement with recent exact diagonalization (ED) and density matrix renormalization group (DMGR) results. We further show that the wave function can be decomposed into a quasiparticle component and an incoherent momentum distribution in excellent agreement with the DMRG results up to an 8×88\times 8 lattice. Such a two-component structure indicates the breakdown of Landau's one-to-one correspondence principle, and in particular, the quasiparticle spectral weight vanishes by a power law in the large sample-size limit. By contrast, turning off the phase string induced by the hole hopping in the so-called σt-J\sigma\cdot t\text{-}J model, a conventional Bloch-wave wave function with a finite quasiparticle spectral weight can be recovered, also in agreement with the ED and DMRG results. The present study shows that a singular effect already takes place in the single-hole-doped Mott insulator, by which the bare hole is turned into a non-Landau quasiparticle with translational symmetry breaking. Generalizations to pairing and finite doping are briefly discussed.

Cite

@article{arxiv.1812.05627,
  title  = {Single-hole wave function in two dimensions: A case study of the doped Mott insulator},
  author = {Shuai Chen and Qing-Rui Wang and Yang Qi and D. N. Sheng and Zheng-Yu Weng},
  journal= {arXiv preprint arXiv:1812.05627},
  year   = {2019}
}

Comments

12pages, 8figures, resubmitted

R2 v1 2026-06-23T06:41:54.805Z