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Neda Ebrahimian

Publications and source records attributed to Neda Ebrahimian.

3 recordsLinked to original sources

Quasiparticle specific heat of two-component Fermi mixtures: The atomic 163Dy-40K mixture

Ultracold Fermi gases can enter a regime of normal superfluid phase separation, with an unpolarized superfluid component surrounded by a partially polarized normal component. Mass-imbalanced two-component Fermi mixtures on the Bardeen Cooper Schrieffer side of the crossover are studied using mean-field theory within the local density approximation, assuming s-wave pairing induced by a Feshbach resonance and imposing the phase-equilibrium conditions for the phase-separated state. The imbalance chemical potential is chosen to be smaller than the energy gap, so that other possible phases are avoided in the regime considered here. The energy gap and Hartree Fock potentials are obtained self- consistently. The effects of interaction strength and mass ratio on the phase diagram, superfluid density of states, and quasiparticle specific heat are then examined. Within the investigated parameter range, increasing the magnitude of the interaction strength increases the average and imbalance chemical potentials, while reducing the energy gap and the superfluid density of states. The total quasiparticle specific heat decreases with increasing imbalance chemical potential and interaction strength, but increases with mass ratio. Results for the Fermi Fermi mixture of dysprosium and potassium atoms show that the specific heat provides a thermal signature of mass-asymmetric pairing.

cond-mat.quant-gas

Absorbed power in ultracold polarized Fermi mixtures at normal-superfluid separation phase: Mass-imbalanced effect

Considering ultracold spin-imbalanced Fermi-Fermi mixtures with different spin up and down masses, the absorbed power, subject to an external perturbation with low frequency, has been calculated. The system is composed of spin-up quasiparticles and spin-down quasiholes. The average chemical potential and energy gap have also been numerically calculated via applying different fixed interaction strengths and masses, and then by solving coupled differential equations characterized by Hartree-Fock potential for the spin species, as well as that of the phase separation (PS), leading to imbalance chemical potential. The dependence of the imbalance and average chemical potential in PS regime, to the polarization of the normal component, mass ratios, and interaction strengths are analyzed. Examining density of states (DOS), and by applying the Fermi golden rule at finite temperatures, the absorbed power has accordingly been calculated as a function of temperature, interaction strength, and mass ratio. Finally, the behavior of absorbed power versus frequency has been investigated.

cond-mat.quant-gas

Quantum Information Aspects on Bulk and Nano Interacting Fermi System: Spin-Space Density Matrix Approach

In this paper, we investigate quantum correlation of an interacting Fermi system, which is a nodal superconductor (d-wave superconductor) at zero temperature, via quantum entanglement of two electron spins forming Cooper pairs (Werner state), tripartite and quantum discord. After calculating single-electron Green functions, the two-electron space-spin density matrix, which has X-state form, is obtained. The dependence of quantum correlation to the relative distance of electrons spins of Cooper pair and energy gap is investigated. One of the results is, for d-wave case, concurrence (as a measure of entanglement), quantum discord and tripartite are sensitive to the change of magnitude of gap. Another result is both concurrence and discord oscillate. Then, we consider three-dimensional rectangular nano-superconducting grain in the weak coupling frame. The nano-size effect is entered via gap fluctuation. The dependence of quantum correlation to length of superconductor and lower bound of robustness of tripartite entanglement are determined. Moreover, we show that quantum correlation of d-wave nano-size superconducting grain strongly depends on length of grain (in contrast to s-wave case). In general, it is found that the length of grain lower, the effect of nano-size on quantum correlation higher. Quantum tripartite for nano-scale d-wave superconductor is better than for bulk d-wave superconductor. However, we find out both bulk and nano-size s-wave superconductors have the same tripartite. Furthermore, entanglement length and quantum correlation length are investigated and it is shown that there is a length of superconductor in which discord becomes zero. Also, for a given fixed length of superconductor, both a peak in discord and a peak in concurrence occur simultaneously.

cond-mat.supr-con