English

High-temperature magnetization and entropy of the triangular lattice Hubbard model in a Zeeman field

Strongly Correlated Electrons 2023-03-08 v1

Abstract

We use strong coupling expansions to calculate the entropy function S(T,h)S(T,h), the magnetization M(T,h)M(T,h), and the double occupancy factor D(T,h)D(T,h) for the half-filled triangular lattice Hubbard model as a function of temperature TT and Zeeman field hh, for various values of the Hubbard parameter ratio U/tU/t. These calculations converge well for temperatures larger than the exchange parameter J=4t2UJ=\frac{4t^2}{U} for moderate to large U/tU/t values. Setting μ=U/2\mu=U/2 suffices to obtain the density of half filling within a fraction of one percent at all temperatures studied for U/t8U/t \geq 8. We discuss the systematic variation of properties with U/tU/t. The temperature dependence of entropy and the double occupancy parameter shows a mapping to an antiferromagnetic Mott insulating behavior at temperatures well above T=JT=J for U/t10U/t\ge 10. Convergence of the series is weaker at intermediate fields implying non-monotonic variation of spin-correlations with the Zeeman field. We discuss the relevance of the Hubbard model results to the triangular-lattice antiferromagnetic materials Lu3_3Cu2_2Sb3_3O14_{14} (LCSO) studied recently by Yang et al [Yang et al arXiv:2102.09271 (2022)].

Keywords

Cite

@article{arxiv.2303.03550,
  title  = {High-temperature magnetization and entropy of the triangular lattice Hubbard model in a Zeeman field},
  author = {Owen Bradley and Yutan Zhang and Jaan Oitmaa and Rajiv R. P. Singh},
  journal= {arXiv preprint arXiv:2303.03550},
  year   = {2023}
}

Comments

13 pages, 15 figures