English

Revealing quantum phase string effect in doped Mott-insulator: a tensor network state approach

Strongly Correlated Electrons 2025-12-19 v1

Abstract

We apply the fermionic tensor network (TN) state method to understand the strongly correlated nature in a doped Mott insulator. We conduct a comparative study of the σt\sigma t-JJ model, in which the no-double-occupancy constraint remains unchanged but the quantum phase string effect associated with doped holes is precisely switched off. Thus, the ground state of the σt\sigma t-JJ model can serve as a well-controlled reference state of the standard tt-JJ model. In the absence of phase string, the spin long-range antiferromagnetic (AFM) order is found to be essentially decoupled from the doped holes, and the latter contribute to a Fermi-liquid-like compressibility and a coherent single-particle propagation with a markedly reduced pairing tendency. In contrast, our TN calculations of the tt-JJ model indicate that the AFM order decreases much faster with doping and the single-particle propagation of doped holes gets substantially suppressed, concurrently with a much stronger charge compressibility at small doping and a significantly amplified Cooper pairing tendencies. These findings demonstrate that quantum many-body interference from phase strings plays a pivotal role in the tt-JJ model, mediating long-range entanglement between spin and charge degrees of freedom.

Cite

@article{arxiv.2503.23851,
  title  = {Revealing quantum phase string effect in doped Mott-insulator: a tensor network state approach},
  author = {Wayne Zheng and Jia-Xin Zhang and Zheng-Yuan Yue and Zheng-Cheng Gu and Zheng-Yu Weng},
  journal= {arXiv preprint arXiv:2503.23851},
  year   = {2025}
}

Comments

12 pages, 11 figures

R2 v1 2026-06-28T22:40:13.242Z