Two-point momentum correlations of few ultracold quasi-one-dimensional trapped fermions: Diffraction patterns
Benedikt B. Brandt, Constantine Yannouleas, Uzi Landman

TL;DR
This paper investigates two-point momentum and spatial correlations of few ultracold fermions in one-dimensional traps, revealing diffraction patterns and transition behaviors across interaction regimes using exact numerical methods and analytical models.
Contribution
It provides a detailed analysis of correlation patterns in few-fermion systems across interaction strengths, introducing an analytical model that matches ab-initio numerical results.
Findings
Two-point momentum correlations show damped oscillatory diffraction patterns.
Strong interatomic repulsion leads to fully developed diffraction behavior.
Correlations are dominated by nearest-neighbor interactions, showing 'shortsightedness'.
Abstract
Spatial and momentum correlations are important in the analysis of the quantum states and different phases of trapped ultracold atom systems as a function of the strength of interatomic interactions. Identification and understanding of spin-resolved patterns exhibited in two-point correlations, accessible directly by experiments, are key for uncovering the symmetry and structure of the many-body wave functions of the trapped system. Using the configuration interaction method for exact diagonalization of the many-body Hamiltonian of fermionic atoms trapped in single, double, triple, and quadruple wells, we analyze both two-point momentum and space correlations, as well as associated noise distributions, for a broad range of interparticle contact repulsion strengths and interwell separations, unveiling characteristics allowing insights into the transition, via an intermediate…
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