Collective Excitations and Nonequilibrium Phase Transition in Dissipative Fermionic Superfluids
Коллективные возбуждения и неравновесный фазовый переход в диссипативных фермионных сверхтекучих системах
2021-07-29
SCID: 54.1/ghjyuw8m
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BCS theoryJosephson junctionfermionic superfluidsnonequilibrium dynamical phase transitiontwo-body loss
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Abstract (AI)
We predict a new mechanism to induce collective excitations and a nonequilibrium phase transition of fermionic superfluids via a sudden switch on of two-body loss, for which we extend the BCS theory to fully incorporate a change in particle number. We find that a sudden switch on of dissipation induces an amplitude oscillation of the superfluid order parameter accompanied by a chirped phase rotation as a consequence of particle loss. We demonstrate that when dissipation is introduced to one of the two superfluids coupled via a Josephson junction, it gives rise to a nonequilibrium dynamical phase transition characterized by the vanishing dc Josephson current. The dissipation-induced collective modes and nonequilibrium phase transition can be realized with ultracold fermionic atoms subject to inelastic collisions.
Key Findings
1
A sudden switch-on of two-body loss induces collective excitations in fermionic superfluids, modeled using an extended BCS theory that accounts for particle-number changes.
2
Dissipation drives amplitude oscillations of the superfluid order parameter accompanied by chirped phase rotation caused by particle loss.
3
Introducing dissipation into one superfluid of a Josephson-coupled pair produces a nonequilibrium dynamical phase transition marked by vanishing dc Josephson current.
4
The predicted dissipation-induced collective modes and phase transition are experimentally realizable with ultracold fermionic atoms undergoing inelastic collisions.
Research Object
dissipative fermionic superfluids, including two superfluids coupled by a Josephson junction
Research Subject
dissipation-induced collective excitations and the nonequilibrium dynamical phase transition, including amplitude oscillations, chirped phase rotation, and vanishing dc Josephson current
Publication Details
Publication Date
2021-07-29
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