Fermionic vs. bosonic two-site Hubbard models with a pair of interacting cold atoms
Subhanka Mal, Kingshuk Adhikary, Bimalendu Deb

TL;DR
This paper provides a detailed theoretical comparison of fermionic and bosonic two-site Hubbard models with interacting cold atoms, highlighting differences in quantum entanglement and fluctuations despite similar statistical properties.
Contribution
It introduces a comprehensive analysis of fermionic and bosonic Hubbard models with finite-range interactions, emphasizing differences in quantum entanglement and phase fluctuations.
Findings
Fermionic entanglement exceeds bosonic entanglement.
Fermions exhibit phase squeezing at maximal entanglement.
Bosons show population imbalance squeezing without phase squeezing.
Abstract
In a recent work, Murmann {\it et. al.} [Phys. Rev. Lett. {\bf114}, 080402 (2015)] have experimentally prepared and manipulated a double-well optical potential containing a pair of Fermi atoms as a possible building block of Hubbard model. Here, we carry out a detailed theoretical study on the properties of both fermionic and bosonic two-site Hubbard models with a pair of interacting atoms in a trap with a double-well structure along z-axis and a 2D harmonic confinement along the transverse directions. We consider fermions as of two-component type and bosons as of spinless as well as of two spin components. We first discuss building up the Hubbard models using the model finite-range interaction potentials of Jost and Kohn. In general, a finite range of interaction leads to on-site, inter-site, exchange and partial-exchange terms. We show that, given the same input parameters for both…
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