Please use this identifier to cite or link to this item: https://research.matf.bg.ac.rs/handle/123456789/2805
Title: Continuum reverberation mapping of accretion discs surrounding supermassive black hole binaries: Observational signatures
Authors: Fu, Yi Xin
Li, Yan Rong
Wang, Jian Min
Horne, Keith
Santisteban, Juan V.Hernández
Vieliute, Roberta
Edelson, Rick
Liu, Tingting
Brotherton, Michael S.
Popović, Luka
Kovačević, Anđelka 
Zhai, Shuo
Affiliations: Astronomy 
Keywords: accretion, accretion discs;black hole physics;quasars: supermassive black holes
Issue Date: 1-Nov-2025
Rank: M21
Publisher: Oxford Academic
Journal: Monthly Notices of the Royal Astronomical Society
Abstract: 
It has remained challenging to reliably identify sub-parsec supermassive black hole binaries (SMBHBs), despite them being expected to be ubiquitous. We propose a new method using multiband continuum reverberation mapping to identify low-mass-ratio SMBHBs in active galactic nuclei. The basic principle is that, due to the presence of a low-density cavity between the mini-discs and the circumbinary disc, the continuum emissions show a deficit at certain wavelengths, leading to a distinguishing feature in the relation between the inter-band time lag and wavelengths. Specifically, the relation appears flat at short wavelengths because of the truncated sizes of the mini-discs and transits to a power law at long wavelength stemming from the circumbinary disc. This transition feature is distinct from the uniform relation of the standard accretion disc around a single black hole. Using the lamp-post scenario and assuming that only the secondary black hole is active in a low-mass-ratio SMBHB, we design a simple continuum reverberation model to calculate the transfer function of the accretion discs and the resulting relations for various SMBHB orbital parameters. The transition wavelength typically can lie at UV/optical bands, mainly depending on the total mass and orbital separation of the SMBHB. We apply our SMBHB model to the intensive multiwavelength monitoring data of the SMBHB candidate PG1302-102 and find that the SMBHB model can reproduce the inter-band time lags. Remarkably, the inferred total mass and orbital period from the SMBHB fitting are consistent with values derived from other independent methods.
URI: https://research.matf.bg.ac.rs/handle/123456789/2805
ISSN: 00358711
DOI: 10.1093/mnras/staf1473
Appears in Collections:Research outputs

Show full item record

Google ScholarTM

Check

Altmetric

Altmetric


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.