Impurities in systems of noninteracting trapped fermions
David S. Dean, Pierre Le Doussal, Satya N. Majumdar, Gregory Schehr

TL;DR
This paper analyzes the effects of impurities modeled by delta potentials on one-dimensional trapped fermions, providing exact calculations of density modifications, effective potentials, and impurity interactions using Green's function methods.
Contribution
It introduces an exact Green's function approach to study impurity effects in 1D trapped fermions, including density profiles, effective potentials, and impurity interactions, revealing universal and transition phenomena.
Findings
Exact density profiles near impurities, including Friedel oscillations.
Universal effective potential depending on local Fermi density.
Observation of a quantum BBP transition with bound state formation.
Abstract
We study the properties of spin-less non-interacting fermions trapped in a confining potential in one dimension but in the presence of one or more impurities which are modelled by delta function potentials. We use a method based on the single particle Green's function. For a single impurity placed in the bulk, we compute the density of the Fermi gas near the impurity. Our results, in addition to recovering the Friedel oscillations at large distance from the impurity, allow the exact computation of the density at short distances. We also show how the density of the Fermi gas is modified when the impurity is placed near the edge of the trap in the region where the unperturbed system is described by the Airy gas. Our method also allows us to compute the effective potential felt by the impurity both in the bulk and at the edge. In the bulk this effective potential is shown to be a universal…
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