unitary fermi gas
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2022 ◽  
Vol 105 (1) ◽  
Author(s):  
Khalid Hossain ◽  
Konrad Kobuszewski ◽  
Michael McNeil Forbes ◽  
Piotr Magierski ◽  
Kazuyuki Sekizawa ◽  
...  

2021 ◽  
Vol 104 (5) ◽  
Author(s):  
Jakub Kopyciński ◽  
Wojciech R. Pudelko ◽  
Gabriel Wlazłowski

Author(s):  
Subhanka Mal ◽  
Bimalendu Deb

Abstract We calculate Bardeen-Cooper-Schrieffer (BCS) state of a unitary Fermi gas of atoms interacting with the finite-ranged Jost-Kohn potential which has been recently shown to account for the resonant interactions [2019 {\rm J. Phys. B: At. Mol. Opt. Phys.} {\bf 52}, 165004]. Using exact scattering solution of the potential, we derive two-body ${\mathbf T}$-matrix element which is employed to construct the BCS Hamiltonian in momentum space. We present results on the energy- and range-dependence of the pairing gap and superfluid density and the range-dependence of the chemical potential for a wide variation of the scattering length including the \textcolor{red}{unitary} regime. In the zero range limit our calculated gap at the Fermi energy is found to be nearly equal to that calculated \textcolor{red}{in mean-field theory with contact potential}. The mean gap averaged over the full width at half maximum of the gap function in the zero range and unitary limits is found to be $0.42 E_F$ which is quite close to the recent result of the quantum Monte Carlo simulation [2018 {\rm Phys. Rev.A} {\bf 97}, 013601]. The chemical potential in the zero range limit also agrees well with that for the contact potential.


2021 ◽  
Vol 9 ◽  
Author(s):  
Masaaki Tokieda ◽  
Shimpei Endo

We analytically study quantum dissipative dynamics described by the Caldirola-Kanai model with inter-particle interactions. We have found that the dissipative quantum dynamics of the Caldirola-Kanai model can be exactly mapped to a dissipationless quantum dynamics under a negative external harmonic potential, even when the particles are strongly interacting. In particular, we show that the mapping is valid for the unitary Fermi gas, which is relevant for cold atoms and nuclear matters.


2021 ◽  
Vol 103 (4) ◽  
Author(s):  
Lukas Rammelmüller ◽  
Yaqi Hou ◽  
Joaquín E. Drut ◽  
Jens Braun

2021 ◽  
Vol 23 (4) ◽  
pp. 043029
Author(s):  
K Roux ◽  
V Helson ◽  
H Konishi ◽  
J P Brantut
Keyword(s):  

2021 ◽  
Vol 103 (2) ◽  
Author(s):  
M. Pini ◽  
P. Pieri ◽  
R. Grimm ◽  
G. Calvanese Strinati

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Hang Zhou ◽  
Yongli Ma

AbstractRecent experiments on sound waves in a unitary Fermi gas reveal many transport properties about strongly interacting fermions. Sound propagates through the coupling of momentum and heat transport, and attenuates strongly with the presence of a phase transition. In this work, focusing on the temperature regimes near and below the superfluid critical temperature $$T_c$$ T c in the BCS-BEC crossover, we present a Kubo-based microscopic calculation of thermal conductivity $$\kappa$$ κ , which has not attracted much attention compared to the shear viscosity. Our approach primarily addresses the contributions of the fermionic quasiparticles to thermal transport and our results return to the kinetic descriptions at high temperatures. $$\kappa$$ κ drops upon crossing the pseudogap temperature $$T^*$$ T ∗ , and its temperature dependence changes below $$T_c$$ T c . The drops become more pronounced on the weakly coupled BCS side, where the Pauli blocking causes the upturn of $$\kappa$$ κ above $$T^*$$ T ∗ . Our calculations fit well with the sound measurement on the damping rate.


Universe ◽  
2020 ◽  
Vol 6 (11) ◽  
pp. 208
Author(s):  
David Durel ◽  
Michael Urban

Due to the large neutron–neutron scattering length, dilute neutron matter resembles the unitary Fermi gas, which lies half-way in the crossover from the BCS phase of weakly coupled Cooper pairs to the Bose–Einstein condensate of dimers. We discuss crossover effects in analogy with the T-matrix theory used in the physics of ultracold atoms, which we generalize to the case of a non-separable finite-range interaction. A problem of the standard Nozières–Schmitt-Rink approach and different ways to solve it are discussed. It is shown that in the strong-coupling regime, the spectral function exhibits a pseudo-gap at temperatures above the critical temperature Tc. The effect of the correlated density on the density dependence of Tc is found to be rather weak, but a possibly important effect due to the reduced quasiparticle weight is identified.


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