Emma Laird, Brendan Mulkerin, Jia Wang, Matthew Davis
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When does a Fermi puddle become a Fermi sea? Emergence of Pairing in Two-Dimensional Trapped Mesoscopic Fermi Gases
Pairing lies at the heart of superfluidity in fermionic systems. Motivated by
recent experiments in mesoscopic Fermi gases, we study up to six fermionic
atoms with equal masses and equal populations in two different spin states,
confined in a quasi-two-dimensional harmonic trap. We couple a stochastic
variational approach with the use of an explicitly correlated Gaussian basis
set, which enables us to obtain highly accurate energies and structural
properties. Utilising two-dimensional two-body scattering theory with a
finite-range Gaussian interaction potential, we tune the effective range to
model realistic quasi-two-dimensional scattering. We calculate the excitation
spectrum, pair correlation function, and paired fraction as a function of
increasing attractive interaction strength. For up to six fermions in the
ground state, we find that opposite spin and momentum pairing is maximised well
below the Fermi surface in momentum space. By contrast, corresponding
experiments on twelve fermions have found that pairing is maximal at the Fermi
surface and strongly suppressed beneath [M. Holten et al., Nature 606, 287-291
(2022)]. This suggests that the Fermi sea $-$ which acts to suppress pairing at
low momenta through Pauli blocking $-$ emerges in the transition from six to
twelve particles.