Thermal luminosity degeneracy of magnetized neutron stars with and without hyperon cores

Author:

Anzuini F123ORCID,Melatos A14,Dehman C56,Viganò D567ORCID,Pons J A8

Affiliation:

1. School of Physics, University of Melbourne , Parkville, Victoria 3010, Australia

2. School of Physics and Astronomy, Monash University , Victoria 3800, Australia

3. OzGrav: The ARC Centre of Excellence for Gravitational Wave Discovery , Clayton, Victoria 3800, Australia

4. Australian Research Council Centre of Excellence for Gravitational Wave Discovery (OzGrav), University of Melbourne , Parkville, Victoria 3010, Australia

5. Institute of Space Sciences (IEEC-CSIC), Campus UAB, Carrer de Can Magrans s/n, E-08193 , Barcelona, Spain

6. Institut d’Estudis Espacials de Catalunya (IEEC) , Carrer Gran Capità 2-4, E-08034 Barcelona, Spain

7. Institute of Applied Computing & Community Code (IAC3), University of the Balearic Islands , Palma, E-07122, Spain

8. Departament de Física Aplicada, Universitat d’Alacant , E-03690 Alicante, Spain

Abstract

ABSTRACT The dissipation of intense crustal electric currents produces high Joule heating rates in cooling neutron stars. Here, it is shown that Joule heating can counterbalance fast cooling, making it difficult to infer the presence of hyperons (which accelerate cooling) from measurements of the observed thermal luminosity Lγ. Models with and without hyperon cores match Lγ of young magnetars (with poloidal–dipolar field Bdip ≳ 1014 G at the polar surface and Lγ ≳ 1034 erg s−1 at t ≲ 105 yr) as well as mature, moderately magnetized stars (with Bdip ≲ 1014 G and 1031 erg s−1 ≲ Lγ ≲ 1032 erg s−1 at t ≳ 105 yr). In magnetars, the crustal temperature is almost independent of hyperon direct Urca cooling in the core, regardless of whether the latter is suppressed or not by hyperon superfluidity. The thermal luminosities of light magnetars without hyperons and heavy magnetars with hyperons have Lγ in the same range and are almost indistinguishable. Likewise, Lγ data of neutron stars with Bdip ≲ 1014 G but with strong internal fields are not suitable to extract information about the equation of state as long as hyperons are superfluid, with maximum amplitude of the energy gaps of the order ≈1 MeV.

Funder

BCPM

University of Melbourne

Australian Research Council

European Research Council

Universitat Autònoma de Barcelona

Generalitat Valenciana

AEI

Alexander von Humboldt-Stiftung

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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