Trace-anomaly decomposition and universal dark matter scaling in compact stars
Adamu Issifu, Constança Providência, Tobias Frederico
Abstract
We investigate how dark matter (DM) admixture modifies the conformal properties and phase structure of dense neutron-star matter within a self-consistent single-fluid framework, with the global DM fraction Fχ=Nχ/NB fixing the local relation nχ=FχnB. We derive an exact decomposition of the total trace anomaly, Δ tot, into microscopic contributions. For collider-motivated Higgs-portal benchmarks, explicit Higgs, vector-mediator, and contact-interaction contributions are negligible, while heavy nonrelativistic DM has an intrinsic trace anomaly close to the nonrelativistic limit, Δχ1/3. Consequently, the DM rest-mass energy fraction dominates the DM-induced modification of Δ tot, producing a smooth upward shift of up to 0.1 for Fχ0.2\%. In the pressureless, comoving heavy-WIMP regime, we further identify a universal dark-sector scaling governed by the mass-loading parameter λ=Fχmχ/mN: numerical calculations with different (Fχ,mχ) pairs at fixed λ exhibit overlapping trace-anomaly, sound-speed, and mass--radius responses for a given baryonic equation of state. In hybrid stars, DM leaves the coexistence pressure and chemical potential essentially unchanged, whereas first-order hadron--quark deconfinement produces sharp discontinuities in the squared sound speed cs2, Δ tot, and Δ tot-ΔB. The combined softening substantially reduces the maximum stellar mass, placing Fχ0.2\% in tension with the observed 2\,M neutron stars. These results show that the trace anomaly and its density evolution provide a sensitive diagnostic for distinguishing smooth DM-induced modifications of dense matter from genuine first-order deconfinement.
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