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Unveiling the properties of galaxy cores excavated by supermassive black hole binaries with SHARP
Journal article   Peer reviewed

Unveiling the properties of galaxy cores excavated by supermassive black hole binaries with SHARP

E. Bortolas, E. Portaluri, E. Dalla Bontà, C. Arcidiacono, P. Severgnini and A. Gualandris
New Astronomy, Vol.128, 102593
11/2026

Abstract

Core scouring ELT Galaxy dynamics Gravitational waves MORFEO SHARP Supermassive black hole binaries
Massive black hole (MBH) binaries form as a result of galaxy mergers and can coalesce into a single MBH by emitting gravitational waves detectable by LISA and pulsar timing array campaigns. Although electromagnetic observations of bound MBH binaries are extremely challenging, an indirect signature of their passage is the core scouring: a bound binary shrinks by ejecting nearby stars, creating a flat stellar density core of the size of the binary influence radius. Through this mechanism, stars on radial orbits are preferentially ejected, resulting in a central tangential anisotropy in the velocity field of stars that can be identified via IFU observations. At present, the sample of galaxies with such properties is limited by instrument resolution to the closest giant ellipticals within the nearest ≈100 Mpc. The SHARP-VESPER IFU and MICADO+MORFEO instruments can work in concert to detect both these features: their unprecedented spatial resolution can allow us to detect central scourings with sizes above ∼500 pc in principle up to reionization; smaller cores of ≈150 pc can be detected up to z≈0.14, encompassing a volume that is more than 40 times the one available at present. In addition, they can enable the search for these features in smaller galaxies, enhancing by a factor 30 the volume over which we can search for pc-size cores around 106−107M⊙ MBHs. The fraction of scoured galaxies, combined with their kinematic and morphological properties, carry information on the amount of merging binaries, their masses and typical environment, thus knowing this will be fundamental to complement the forthcoming gravitational wave data.
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Author's Accepted Manuscript Embargo until publication date CC BY V4.0

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