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arXiv · 2607.17556

Beyond Spin: QCD Magnetars

Abstract

We present a unified framework in which anomalous X-ray pulsars (AXPs), soft gamma-ray repeaters (SGRs), superluminous supernovae (SLSNe-I), luminous fast blue optical transients (LFBOTs), and fast radio bursts (FRBs) originate from quark deconfinement in the core of a massive neutron star (NS). Spontaneous ferromagnetism in the deconfined phase generates ~10^18 G core fields, producing a highly magnetized hybrid star (HS) - the "QCD magnetar" - whose surface field is set by NS mass, not birth spin. The Quark-Nova (QN) that forms the HS ejects ~0.01M_sun of neutron-rich outer layers, powering a kilonova and leaving the HS crustless for centuries. During this phase, magnetic instabilities at the hadron-quark interface release rising flux ropes that power X-ray-quiet FRBs; as the crust reforms, the source evolves into an X-ray-loud AXP&SGR. Two parameters govern the model: a critical mass M_dec triggering deconfinement, and a critical period P_fast separating fast and slow rotators. Fast rotators inject spin-down energy into the QN ejecta, producing an LFBOT - directly observable once the SN ejecta is optically thin, or via binary accretion with no preceding SN; otherwise the LFBOT is reprocessed by the SN ejecta into an SLSN-I. A Bayesian Monte Carlo population synthesis reproduces the observed rates of AXPs&SGRs, SLSNe-I, and LFBOTs with M_dec ~2.1M_sun and P_fast ~5.5 ms, and predicts non-merger r-process signatures and kilonovae from isolated NSs, with or without an LFBOT. The QN ejecta also carries its own DM and RM, independent of environment, predicted to appear as excess dispersion and rotation measure in FRBs once Galactic, host, and intergalactic contributions are removed. These provide direct observational tests of the hadron-quark phase transition and ferromagnetic ordering in dense quark matter.

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BibTeXRIS

Rachid Ouyed. 2026-07-20. Beyond Spin: QCD Magnetars. https://arxiv.org/abs/2607.17556

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