English

Fermionic algebraic quantum spin liquid in an octa-kagome frustrated antiferromagnet

Strongly Correlated Electrons 2017-05-18 v1

Abstract

We investigate the ground state and finite-temperature properties of the spin-1/2 Heisenberg antiferromagnet on an infinite octa-kagome lattice by utilizing state-of-the-art tensor network-based numerical methods. It is shown that the ground state has a vanishing local magnetization and possesses a 1/21/2-magnetization plateau with up-down-up-up spin configuration. A quantum phase transition at the critical coupling ratio Jd/Jt=0.6J_{d}/J_{t}=0.6 is found. When 0<Jd/Jt<0.60<J_{d}/J_{t}<0.6, the system is in a valence bond state, where an obvious zero-magnetization plateau is observed, implying a gapful spin excitation; when Jd/Jt>0.6J_{d}/J_{t}>0.6, the system exhibits a gapless excitation, in which the dimer-dimer correlation is found decaying in a power law, while the spin-spin and chiral-chiral correlation functions decay exponentially. At the isotropic point (Jd/Jt=1J_{d}/J_{t}=1), we unveil that at low temperature (TT) the specific heat depends linearly on TT, and the susceptibility tends to a constant for T0T\rightarrow 0, giving rise to a Wilson ratio around unity, implying that the system under interest is a fermionic algebraic quantum spin liquid.

Keywords

Cite

@article{arxiv.1705.06006,
  title  = {Fermionic algebraic quantum spin liquid in an octa-kagome frustrated antiferromagnet},
  author = {Cheng Peng and Shi-Ju Ran and Tao Liu and Xi Chen and Gang Su},
  journal= {arXiv preprint arXiv:1705.06006},
  year   = {2017}
}

Comments

9 pages, 13 figures

R2 v1 2026-06-22T19:49:31.114Z