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May 6, 2026Universe0 citationsOpen Access

Anisotropic Compact Stars: Theory and Simulation from Microphysical Models to Macroscopic Structure and Observables

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ZZZenia ZuraiqMDMayusree DasDDDebabrata Deb

Key Points

  • This review aims to examine how magnetic fields and anisotropic stresses affect compact stars' structures and properties.
  • Unified treatment of neutron stars, hybrid stars, and white dwarfs.
  • Review of microphysical models and macroscopic effects.
  • Analysis of magnetic-field geometry on star properties.
  • Magnetic-field geometry critically modifies maximum mass and structural properties.
  • Toroidally oriented fields enhance mass by providing extra pressure support.
  • Continuous gravitational wave emission offers insights into internal field geometry.

Abstract

Strong magnetic fields and anisotropic stresses can substantially modify the structure and observable properties of compact stars. In this review, we present a unified treatment of magnetically induced anisotropy across neutron stars, hybrid stars, and white dwarfs, connecting the microphysical equation of state effects to macroscopic structure and multimessenger observables. We demonstrate that magnetic-field geometry plays a decisive role: toroidally oriented (transverse) fields enhance the maximum mass by providing additional perpendicular pressure support, whereas radially oriented fields primarily increase central compression with comparatively small mass gain. In neutron stars, anisotropy and magnetic stresses can shift phase-transition thresholds in hybrid models and enable configurations in the lower mass gap with significantly smaller magnetic energy compared to the gravitational binding energy. We further show that continuous gravitational wave emission from magnetically deformed neutron stars provides a complementary probe of internal field geometry through ellipticity-driven strain evolution. In magnetized white dwarfs, super-Chandrasekhar masses arise from the spatial redistribution of magnetic stresses rather than from globally strong magnetic energy. Taken together, these results highlight that magnetic-field geometry and matter anisotropy are as important as field strength in determining mass–radius relations, tidal deformability, gravitational wave detectability, and the emergence of extreme compact-star configurations.

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Cite This Study

Zuraiq et al. (2026) studied this question.

synapsesocial.com/papers/69fa8ef304f884e66b531581https://doi.org/10.3390/universe12050130
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