Superfluid quantum criticality and the thermal evolution of neutron stars
Hao-Fu Zhu, Guo-Zhu Liu, Jing-Rong Wang, Xufen Wu

TL;DR
This paper presents a theoretical analysis of superfluid quantum criticality in neutron stars, revealing its significant impact on cooling processes, specific heat, and neutrino emission, and providing a better fit to observational data.
Contribution
It is the first to analyze superfluid quantum criticality in neutron stars and its effects on their thermal evolution, using advanced theoretical methods.
Findings
Quantum criticality affects neutron star cooling significantly.
Logarithmic correction to neutron specific heat due to quantum critical fluctuations.
Quantum critical phenomena influence neutrino emissivity and prolong thermal relaxation.
Abstract
The neutron star starts to cool down shortly after its birth by emitting neutrinos. As it becomes cold enough, the Cooper pairs of neutrons are formed, triggering a superfluid transition. Previous studies on neutron superfluidity focused on finite-temperature transitions, with little attention paid to the potentially important quantum critical phenomena associated with superfluidity. Here, we provide the first theoretical analysis of superfluid quantum criticality, concentrating on its impact on neutron star cooling. Extensive calculations found that superfluidity occurs within a finite range of neutron star density . The density serves as a nonthermal parameter for a superfluid quantum phase transition. In a broad quantum critical region, gapless neutrons are strongly coupled to the quantum critical fluctuations of the superfluid order parameter. We handle this coupling using…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Superconducting Materials and Applications
