English

Doping $S=1$ antiferromagnet in one-dimension

Strongly Correlated Electrons 2026-01-21 v2

Abstract

Antiferromagnetic ground states, when doped, give rise to rich and complex phenomena, prompting detailed investigations in various spin systems. Here, we study the effect of doping on the one-dimensional S=1S = 1 antiferromagnetic Heisenberg model (AFM). Specifically, we investigate how the presence of holes affects the static and dynamic (frequency-dependent) spin-spin correlations of the two-orbital Hubbard-Kanamori chain. The latter, at half-filling and in the strong-interaction limit, maps onto an S=1S = 1 Heisenberg model. For moderate interactions, an orbital resonating-valence-bond (orbital-RVB) state emerges up to doping levels of x0.3x \lesssim 0.3. A detailed analysis of interaction strength UU and doping concentration xx reveals that this phase inherits the key features of spin excitations found in the half-filled case -- namely, a gapped spin spectrum and ``coherent'' magnon behavior up to a wavevector qq determined by the Fermi vector, 2kF=π(1x)2k_\mathrm{F} = \pi(1 - x). Furthermore, our results uncover an additional broad, incoherent spectral weight for q2kFq \gtrsim 2k_\mathrm{F} at high frequencies. Finally, we show that near the transition to a ferromagnetic phase, a previously unidentified spiral-like state emerges, characterized by spin excitations reminiscent of the J1J_1-J2J_2 Heisenberg model.

Keywords

Cite

@article{arxiv.2508.07712,
  title  = {Doping $S=1$ antiferromagnet in one-dimension},
  author = {J. Prokopczyk and J. Herbrych},
  journal= {arXiv preprint arXiv:2508.07712},
  year   = {2026}
}
R2 v1 2026-07-01T04:43:47.838Z