High-momentum tails as magnetic structure probes for strongly-correlated $SU(\kappa)$ fermionic mixtures in one-dimensional traps
Jean Decamp, Johannes J\"unemann, Mathias Albert, Matteo, Rizzi, Anna Minguzzi, Patrizia Vignolo

TL;DR
This paper investigates how the large-momentum tails in strongly-correlated $SU()$ fermionic mixtures reveal magnetic structures, providing a method to determine magnetic configurations experimentally through Tan's contact and analyzing its behavior across interaction strengths and temperatures.
Contribution
It establishes a direct link between Tan's contact coefficients and magnetic structure via Young tableaux, enabling experimental magnetic state determination in cold atomic gases.
Findings
Tan's contact exhibits a $k^{-4}$ decay signature of strong correlations.
The contact correlates with magnetic structure via Young tableaux.
LDA accurately predicts contact behavior in harmonic traps.
Abstract
A universal decay of the large-momentum tails of the momentum distribution, fixed by Tan's contact coefficients, constitutes a direct signature of strong correlations in a short-range interacting quantum gas. Here we consider a repulsive multicomponent Fermi gas under harmonic confinement, as in the experiment of Pagano et al. [Nat. Phys. {\bf 10}, 198 (2014)], realizing a gas with tunable symmetry. We exploit an exact solution at infinite repulsion to show a direct correspondence between the value of the Tan's contact for each of the components of the gas and the Young tableaux for the permutation symmetry group identifying the magnetic structure of the ground-state. This opens a route for the experimental determination of magnetic configurations in cold atomic gases, employing only standard (spin-resolved) time-of-flight techniques. Combining the…
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