Evolution of Accretion Disk Structure of the Black Hole X-ray Binary MAXI J1820$+$070 during the Rebrightening Phase

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Main Authors: Yoshitake, Tomohiro, Shidatsu, Megumi, Ueda, Yoshihiro, Nogami, Daisaku, Murata, Katsuhiro L., Higuchi, Narikazu, Isogai, Keisuke, Maehara, Hiroyuki, Mineshige, Shin, Negoro, Hitoshi, Kawai, Nobuyuki, Yatsu, Yoichi, Sasada, Mahito, Takahashi, Ichiro, Niwano, Masafumi, Saito, Tomoki, Takayama, Masaki, Oasa, Yumiko, Takarada, Takuya, Shigeyoshi, Takumi, Collaboration, OISTER
Format: Preprint
Published: 2024
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author Yoshitake, Tomohiro
Shidatsu, Megumi
Ueda, Yoshihiro
Nogami, Daisaku
Murata, Katsuhiro L.
Higuchi, Narikazu
Isogai, Keisuke
Maehara, Hiroyuki
Mineshige, Shin
Negoro, Hitoshi
Kawai, Nobuyuki
Yatsu, Yoichi
Sasada, Mahito
Takahashi, Ichiro
Niwano, Masafumi
Saito, Tomoki
Takayama, Masaki
Oasa, Yumiko
Takarada, Takuya
Shigeyoshi, Takumi
Collaboration, OISTER
author_facet Yoshitake, Tomohiro
Shidatsu, Megumi
Ueda, Yoshihiro
Nogami, Daisaku
Murata, Katsuhiro L.
Higuchi, Narikazu
Isogai, Keisuke
Maehara, Hiroyuki
Mineshige, Shin
Negoro, Hitoshi
Kawai, Nobuyuki
Yatsu, Yoichi
Sasada, Mahito
Takahashi, Ichiro
Niwano, Masafumi
Saito, Tomoki
Takayama, Masaki
Oasa, Yumiko
Takarada, Takuya
Shigeyoshi, Takumi
Collaboration, OISTER
contents To understand the evolution of global accretion disk structure in the ``rebrightening'' phase of MAXI J1820$+$070, we perform a comprehensive analysis of its near infrared/optical/UV to X-ray spectral energy distribution (SED) utilizing data obtained by OISTER, Las Cumbres Observatory (LCO), Swift, NICER, and NuSTAR in 2019. Optical spectra observed with Seimei telescope in 2019 and 2020 are also analyzed. On the basis of the optical and X-ray light curves and their flux ratios, we divide the whole phase into 3 periods, Periods I (flux rise), II (decay), and III (dim). In the first 2 periods, the source stayed in the low/hard state (LHS), where the X-ray (0.3--30 keV) and optical/UV SED can be both fitted with power-law models. We interpret that the X-ray emission arises from hot corona via Comptonization, whereas the optical/UV flux is dominated by synchrotron radiation from the jets, with a partial contribution from the irradiated disk. The optical/UV power-law component smoothly connects to a simultaneous radio flux, supporting its jet origin. Balmer line profiles in the optical spectra indicate that the inner radius of an irradiated disk slightly decreased from $\sim 2\times 10^5 r_{\rm g}$ (Period I) to $\sim 1\times 10^5 r_{\rm g}$ (Period II), where $r_{\rm g}$ is the gravitational radius, implying a change of the hot corona geometry. In Period III, the SED can be reproduced by an advection-dominated accretion flow and jet emission. However, the double-peaked H$α$ emission line indicates that a cool disk remained at large radii.
format Preprint
id arxiv_https___arxiv_org_abs_2412_11445
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Evolution of Accretion Disk Structure of the Black Hole X-ray Binary MAXI J1820$+$070 during the Rebrightening Phase
Yoshitake, Tomohiro
Shidatsu, Megumi
Ueda, Yoshihiro
Nogami, Daisaku
Murata, Katsuhiro L.
Higuchi, Narikazu
Isogai, Keisuke
Maehara, Hiroyuki
Mineshige, Shin
Negoro, Hitoshi
Kawai, Nobuyuki
Yatsu, Yoichi
Sasada, Mahito
Takahashi, Ichiro
Niwano, Masafumi
Saito, Tomoki
Takayama, Masaki
Oasa, Yumiko
Takarada, Takuya
Shigeyoshi, Takumi
Collaboration, OISTER
High Energy Astrophysical Phenomena
To understand the evolution of global accretion disk structure in the ``rebrightening'' phase of MAXI J1820$+$070, we perform a comprehensive analysis of its near infrared/optical/UV to X-ray spectral energy distribution (SED) utilizing data obtained by OISTER, Las Cumbres Observatory (LCO), Swift, NICER, and NuSTAR in 2019. Optical spectra observed with Seimei telescope in 2019 and 2020 are also analyzed. On the basis of the optical and X-ray light curves and their flux ratios, we divide the whole phase into 3 periods, Periods I (flux rise), II (decay), and III (dim). In the first 2 periods, the source stayed in the low/hard state (LHS), where the X-ray (0.3--30 keV) and optical/UV SED can be both fitted with power-law models. We interpret that the X-ray emission arises from hot corona via Comptonization, whereas the optical/UV flux is dominated by synchrotron radiation from the jets, with a partial contribution from the irradiated disk. The optical/UV power-law component smoothly connects to a simultaneous radio flux, supporting its jet origin. Balmer line profiles in the optical spectra indicate that the inner radius of an irradiated disk slightly decreased from $\sim 2\times 10^5 r_{\rm g}$ (Period I) to $\sim 1\times 10^5 r_{\rm g}$ (Period II), where $r_{\rm g}$ is the gravitational radius, implying a change of the hot corona geometry. In Period III, the SED can be reproduced by an advection-dominated accretion flow and jet emission. However, the double-peaked H$α$ emission line indicates that a cool disk remained at large radii.
title Evolution of Accretion Disk Structure of the Black Hole X-ray Binary MAXI J1820$+$070 during the Rebrightening Phase
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2412.11445