arXiv · 1508.03314
Thermal equation of state of polarized fermions in one dimension via complex chemical potentials
Abstract
We present a nonperturbative computation of the equation of state of polarized, attractively interacting, nonrelativistic fermions in one spatial dimension at finite temperature. We show results for the density, spin magnetization, magnetic susceptibility, and Tan's contact. We compare with the second-order virial expansion, a next-to-leading-order lattice perturbation theory calculation, and interpret our results in terms of pairing correlations. Our lattice Monte Carlo calculations implement an imaginary chemical potential difference to avoid the sign problem. The thermodynamic results on the imaginary side are analytically continued to obtain results on the real axis. We focus on an intermediate- to strong-coupling regime, and cover a wide range of temperatures and spin imbalances.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
A. C. Loheac, J. Braun, J. E. Drut, D. Roscher. 2015-12-07. Thermal equation of state of polarized fermions in one dimension via complex chemical potentials. https://doi.org/10.1103/physreva.92.063609
Cite the original work for its findings. Save a collection to share your selection of sources.