English

Numerical approaches for calculating the low-field dc Hall coefficient of the doped Hubbard model

Strongly Correlated Electrons 2021-07-13 v2 Superconductivity

Abstract

Using determinant Quantum Monte Carlo, we compare three methods of evaluating the dc Hall coefficient RHR_H of the Hubbard model: the direct measurement of the off-diagonal current-current correlator χxy\chi_{xy} in a system coupled to a finite magnetic field (FF), χxyFF\chi_{xy}^{\text{FF}}; the three-current linear response to an infinitesimal field as measured in the zero-field (ZF) Hubbard Hamiltonian, χxyZF\chi_{xy}^{\text{ZF}}; and the leading order of the recurrent expansion RH(0)R_H^{(0)} in terms of thermodynamic susceptibilities. The two quantities χxyFF\chi_{xy}^{\text{FF}} and χxyZF\chi_{xy}^{\text{ZF}} can be compared directly in imaginary time. Proxies for RHR_H constructed from the three-current correlator χxyZF\chi_{xy}^{\text{ZF}} can be determined under different simplifying assumptions and compared with RH(0)R_H^{(0)}. We find these different quantities to be consistent with one another, validating previous conclusions about the close correspondence between Fermi surface topology and the sign of RHR_H, even for strongly correlated systems. These various quantities also provide a useful set of numerical tools for testing theoretical predictions about the full behavior of the Hall conductivity for strong correlations.

Keywords

Cite

@article{arxiv.2103.04998,
  title  = {Numerical approaches for calculating the low-field dc Hall coefficient of the doped Hubbard model},
  author = {Wen O. Wang and Jixun K. Ding and Brian Moritz and Yoni Schattner and Edwin W. Huang and Thomas P. Devereaux},
  journal= {arXiv preprint arXiv:2103.04998},
  year   = {2021}
}

Comments

13 pages, 7 figures