6533b86cfe1ef96bd12c8aed
RESEARCH PRODUCT
Constraining properties of high-density matter in neutron stars with magneto-elastic oscillations
Ewald MüllerJosé A. FontMichael GablerPablo Cerdá-duránNikolaos Stergioulassubject
PhysicsHigh Energy Astrophysical Phenomena (astro-ph.HE)Equation of state (cosmology)OvertoneAstrophysics::High Energy Astrophysical PhenomenaPhase (waves)FOS: Physical sciencesAstronomy and AstrophysicsAstrophysicsMagnetar01 natural sciencesSuperfluidityNuclear physicsNeutron starAstrophysics - Solar and Stellar AstrophysicsSpace and Planetary ScienceExcited state0103 physical sciencesMagnetohydrodynamicsAstrophysics - High Energy Astrophysical Phenomena010306 general physics010303 astronomy & astrophysicsSolar and Stellar Astrophysics (astro-ph.SR)description
We discuss torsional oscillations of highly magnetised neutron stars (magnetars) using two-dimensional, magneto-elastic-hydrodynamical simulations. Our model is able to explain both the low- and high-frequency quasi-periodic oscillations (QPOs) observed in magnetars. The analysis of these oscillations provides constraints on the breakout magnetic-field strength, on the fundamental QPO frequency, and on the frequency of a particularly excited overtone. More importantly, we show how to use this information to generically constraint properties of high-density matter in neutron stars, employing Bayesian analysis. In spite of current uncertainties and computational approximations, our model-dependent Bayesian posterior estimates for SGR 1806-20 yield a magnetic-field strength $\bar B\sim 2.1^{+1.3}_{-1.0}\times10^{15}\,$G and a crust thickness of $\Delta r = 1.6^{+0.7}_{-0.6}$ km, which are both in remarkable agreement with observational and theoretical expectations, respectively (1-$\sigma$ error bars are indicated). Our posteriors also favour the presence of a superfluid phase in the core, a relatively low stellar compactness, $M/R1.4\times10^8\,$cm/s. Although the procedure laid out here still has large uncertainties, these constraints could become tighter when additional observations become available.
year | journal | country | edition | language |
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2017-10-06 |