Phase diagrams of BCS-BEC crossover in asymmetric nuclear matter
K. D. Duan, X. L. Shang

TL;DR
This paper systematically explores the phase structure of the BCS-BEC crossover in asymmetric nuclear matter, focusing on the roles of angle-dependent gap and FFLO states, revealing how these mechanisms influence superfluidity and phase separation across densities.
Contribution
It provides a comprehensive phase diagram analysis incorporating ADG and FFLO effects, highlighting their impact on superfluid stability and phase transitions in asymmetric nuclear matter.
Findings
FFLO and ADG states enlarge superfluidity range under asymmetry.
ADG combined with FFLO reduces phase separation at high density.
Superfluid evolves from D-wave to S-wave dominance with decreasing density.
Abstract
The phase structure of the BCS-BEC crossover for neutron-proton superfluid in asymmetric nuclear matter is systematically investigated, with particular focus on the roles of the angle-dependent gap (ADG) and the Fulde-Ferrell-Larkin-Ovchinnikov (FFLO) states. Phase diagrams in the T-alpha, alpha-rho, and T-rho planes are constructed using both angle-averaged and angle-dependent gap treatments, enabling a unified analysis of the interplay between the FFLO pairing, ADG, and normal-superfluid phase separation (PS). The results confirm that the crossover is primarily density-driven. In the weak-coupling BCS regime, isospin asymmetry suppresses the stability of the homogeneous superfluid phase and drives the system toward PS, while the FFLO and ADG mechanisms partially alleviate this suppression. Although the ADG itself does not extend the asymmetry window for superfluidity, in combination…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Nuclear physics research studies · Cold Atom Physics and Bose-Einstein Condensates
