Heating Up the Black Hole X-ray Binary Accretion Disk by Superradiance
Antonios Kyriazis, Fengwei Yang, Siyu Zhou
Abstract
A superradiant cloud of ultralight axions around a black hole, that is part of an X-ray binary system, can heat up its accretion disk and be detected by the thermal X-ray spectrum emitted by the disk. We consider a derivative coupling of the axions to the plasma fermions and calculate the emissivity of the inverse bremsstrahlung process that results in a temperature fluctuation of the disk. Based on the thin-disk model and the multicolor disk model, we derive the thermal spectrum with axion heating, which shows an enhanced thermal photon flux and a red-/blue- shifted peak spectral frequency. A single bump hunting search of the axion heating signature in the thermal spectrum of a 10M black hole X-ray binary with a spectral measurement sensitivity of 10\% (1\%) can derive the constraint on axion-electron coupling |gae|7.5× 10-12 ~(2.4 × 10-12) for axion mass ma=5.2× 10-12\,eV in a saturated |211 state, and |gae|4.5× 10-12 ~(1.4 × 10-12) for axion mass ma=1.0×10-11\,eV in a saturated |322 state. The projected sensitivities are competitive with those from XENONnT. A detailed continuum fitting can further improve the detectability and provide a complementary bound to the black hole spin-down measurement.
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