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Gravitational waves with dark matter minispikes: the combined effect

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arxiv 1711.09706 v2 pith:CVDLSTFA submitted 2017-11-27 gr-qc astro-ph.GA

Gravitational waves with dark matter minispikes: the combined effect

classification gr-qc astro-ph.GA
keywords accretioneffectgravitationalimbhfrictionmassminispikesmall
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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It was shown that the dark matter(DM) minihalo around an intermediate mass black hole(IMBH) can be redistributed into a cusp, called the DM minispike. We consider an intermediate-mass-ratio inspiral consisting of an IMBH harbored in a DM minispike with nonannihilating DM particles and a small black hole(BH) orbiting around it. We investigate gravitational waves(GWs) produced by this system and analyze the waveforms with the comprehensive consideration of gravitational pull, dynamical friction and accretion of the minispike and calculate the time difference and phase difference caused by it. We find that for a certain range of frequency, the inspiralling time of the system is dramatically reduced for smaller central IMBH and large density of DM. For the central IMBH with $10^5M_\odot$, the time of merger is ahead, which can be distinguished by LISA, Taiji and Tianqin. We focus on the effect of accretion and compare it with that of gravitational pull and friction. We find that the accretion mass is a small quantity compared to the initial mass of the small BH and the accretion effect is inconspicuous compared with friction. However, the accumulated phase shift caused by accretion is large enough to be detected by LISA, Taiji and Tianqin, which indicate that the accretion effect can not be ignored in the detection of GWs.

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Cited by 2 Pith papers

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  1. Black hole spacetimes with dark matter spikes: Energy-momentum tensor and backreaction effects

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  2. Boson Stars Hosting Black Holes

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    Numerical and analytic modeling of boson star-black hole systems in the nonrelativistic limit, with Fisher analysis indicating LISA sensitivity to ultralight dark matter mass and self-coupling via gravitational wave d...