Is The Trace Anomaly at its Minimum Value at Neutron Star Centers?
arXiv:2511.03714 · doi:10.1103/nbmw-k5fs
Abstract
While the equation of state (EOS) of neutron star (NS) matter has been extensively studied, the EOS-parameter or equivalently the dimensionless trace anomaly , which quantifies the balance between pressure and energy density , remains far less explored, especially in NS cores. Its bounds and density profile carry crucial information about the nature of superdense matter. Physically, the EOS-parameter represents the mean stiffness of matter accumulated from the stellar surface up to a given density. Based on the intrinsic structure of the Tolman--Oppenheimer--Volkoff equations, we show that decreases monotonically outward from the NS center, independent of any specific input NS EOS model. Furthermore, observational evidence of a peak in the speed-of-sound squared (SSS) density-profile near the center effectively rules out a valley and a subsequent peak in the radial profile of at similar densities, reinforcing its monotonic decrease. These model-independent relations impose strong constraints on the near-center behavior of the EOS-parameter , particularly demonstrating that the mean stiffness (or equivalently ) reaches a local maximum (minimum) at the center.
Changed the title and added a comment. Phys. Rev. D (2025) in press
References in corpus (16)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Dynamics of dark energy
- PSR J0030+0451 Mass and Radius from NICER Data and Implications for the Properties of Neutron Star Matter
- A NICER View of PSR J0030+0451: Millisecond Pulsar Parameter Estimation
- Color superconductivity in dense quark matter
- Constraining the Maximum Mass of Neutron Stars From Multi-Messenger Observations of GW170817
- Cold Quark Matter
- Modeling GW170817 based on numerical relativity and its implications
- Sound velocity bound and neutron stars
- A NICER View of the Nearest and Brightest Millisecond Pulsar: PSR J0437$\unicode{x2013}$4715
- Progress in Constraining Nuclear Symmetry Energy Using Neutron Star Observables Since GW170817
- Bayesian Inference of the Symmetry Energy of Super-Dense Neutron-Rich Matter from Future Radius Measurements of Massive Neutron Stars
- A general, scale-independent description of the sound speed in neutron stars
- Equation of state of dense matter in the multimessenger era
- Constraints on the phase transition and nuclear symmetry parameters from PSR and multimessenger data of other neutron stars
- Illuminating dark matter admixed in neutron stars with simultaneous mass-radius constraints