English

Derivation of low-energy Hamiltonians for heavy-fermion Materials

Strongly Correlated Electrons 2024-11-12 v2

Abstract

By utilizing a multi-orbital periodic Anderson model with parameters obtained from \textit{ab initio} band structure calculations, combined with degenerate perturbation theory, we derive effective Kondo-Heisenberg and spin Hamiltonians that capture the interaction among the effective magnetic moments. This derivation encompasses fluctuations via both nonmagnetic 4f04f^0 and magnetic 4f24f^2 virtual states, and its accuracy is confirmed through comparison with experimental data obtained from CeIn3_3. The significant agreement observed between experimental results and theoretical predictions underscores the potential of deriving minimal models from first-principles calculations for achieving a quantitative description of 4f4f materials. Moreover, our microscopic derivation unveils the underlying origin of anisotropy in the exchange interaction between Kramers doublets, shedding light on the conditions under which this anisotropy may be weak compared to the isotropic contribution.

Keywords

Cite

@article{arxiv.2408.10964,
  title  = {Derivation of low-energy Hamiltonians for heavy-fermion Materials},
  author = {E. A. Ghioldi and Zhentao Wang and L. M. Chinellato and Jian-Xin Zhu and Yusuke Nomura and Ryotaro Arita and W. Simeth and M. Janoschek and F. Ronning and C. D. Batista},
  journal= {arXiv preprint arXiv:2408.10964},
  year   = {2024}
}

Comments

30 pages, 16 figures