Topology of the Superconducting Heart of Neutron Stars: Effects of Microphysics and Gravitational-Wave Signatures
arXiv:2508.18363 · doi:10.1103/tppt-h46z
Abstract
We present a general-relativistic study of the distribution of proton superconductivity in strongly magnetized neutron stars (NSs), using the XNS code to solve the coupled Einstein-Maxwell equations. We investigate equilibrium configurations with both toroidal and poloidal magnetic field geometries and incorporate complex many-body effects through microscopically derived proton pairing gaps. The models employ equations of state (EoS) obtained from microscopic many-body theory - including realistic two- and three-body nuclear interactions - as well as from relativistic mean-field approaches. We compare superconducting topologies across our collection of EoS and explore the influences of magnetic field geometry in stellar models parameterized by central density. Our models confirm the absence of -wave superconductivity in the inner core and, importantly, reveal that non-superconducting regions exhibit complex three-dimensional geometries: doughnut-shaped for toroidal fields and prolate-shaped for poloidal fields -- spatial structures that are inherently absent in one-dimensional analyses. We also compute magnetic deformations and ellipticities for several millisecond pulsars (MSPs), estimating their continuous gravitational wave strain. While these MSPs remain undetectable by current detectors, next-generation instruments such as the Einstein Telescope and Cosmic Explorer may detect their signals, opening an observational window into internal superconductivity and internal magnetic field of NSs, as well as the fundamental microphysics of dense matter.
18 latex pages including 14 figures (14 jpg files) and 1 table; modified and rearranged throughout for clarity; the version accepted for publication in Physical Review D
References in corpus (34)
- Gravitational-wave sensitivity curves
- Rapid Cooling of the Neutron Star in Cassiopeia A Triggered by Neutron Superfluidity in Dense Matter
- Modelling magnetically deformed neutron stars
- Accurate simulations of the dynamical bar-mode instability in full General Relativity
- The Third Fermi Large Area Telescope Catalog of Gamma-ray Pulsars
- Equation of state and thickness of the inner crust of neutron stars
- PSR J1810+1744: Companion Darkening and a Precise High Neutron Star Mass
- Superfluidity and Superconductivity in Neutron Stars
- Nucleon effective masses within the Brueckner-Hartree-Fock theory: Impact on stellar neutrino emission
- Searches for Gravitational Waves from Known Pulsars at Two Harmonics in the Second and Third LIGO-Virgo Observing Runs
- Vortex Creep Against Toroidal Flux Lines, Crustal Entrainment, and Pulsar Glitches
- Magnetar superconductivity versus magnetism: neutrino cooling processes
- Status and perspectives of Continuous Gravitational Wave searches
- Neutron star deformation due to poloidal-toroidal magnetic fields of arbitrary multipole order: a new analytic approach
- Bayesian model-selection of neutron star equation of state using multi-messenger observations
- Thermal states of neutron stars with a consistent model of interior
- Relativistic dynamics of superfluid-superconducting mixtures in the presence of topological defects and an electromagnetic field with application to neutron stars
- Microscopic Vortex Velocity in the Inner Crust and Outer Core of Neutron Stars
- The High Time Resolution Universe Survey - XI. Discovery of five recycled pulsars and the optical detectability of survey white dwarf companions
- A superfluid perspective on neutron star dynamics
- Cooling of hypernuclear compact stars: Hartree-Fock models and high-density pairing
- The eccentric millisecond pulsar, PSR J09556150 I: Pulse profile analysis, mass measurements and constraints on binary evolution
- Relativistic finite temperature multifluid hydrodynamics in a neutron star from a variational principle
- Quasi-universality of the magnetic deformation of neutron stars in general relativity and beyond
- 3D code for MAgneto-Thermal evolution in Isolated Neutron Stars, MATINS: thermal evolution and lightcurves
- Quick Guides for Use of the CompOSE Data Base
- Detectability of continuous gravitational waves from isolated neutron stars in the Milky Way: the population synthesis approach
- Detection possibility of continuous gravitational waves from rotating magnetized neutron stars
- Massive neutron stars as mass gap candidates: Exploring equation of state and magnetic field
- Magnetohydrodynamic stability of magnetars in the ultrastrong field regime I: The core
- Josephson currents in neutron stars
- Superconductivity in magnetars: Exploring type-I and type-II states in toroidal magnetic fields
- Magnetohydrodynamic stability of magnetars in the ultrastrong field regime II: The crust
- Universality of gravitational radiation from magnetar magnetospheres