Sudeb Ranjan Datta, Michal Dovčiak, Michal Bursa, Wenda Zhang, Jiří Horák, Vladimír Karas
{"title":"Are the shape and flux of X-ray reflection spectra in hard state consistent with an accretion disk reaching close to the black hole?","authors":"Sudeb Ranjan Datta, Michal Dovčiak, Michal Bursa, Wenda Zhang, Jiří Horák, Vladimír Karas","doi":"arxiv-2409.06621","DOIUrl":null,"url":null,"abstract":"The observed spectra from black hole (BH) X-ray binaries (XRBs) typically\nconsist of two primary components: multitemperature blackbody (BB) originating\nfrom the accretion disk in soft X-ray, and a power-law like component in hard\nX-ray due to Comptonization of soft photons by the hot corona. Illumination of\nthe disk by the corona gives rise to another key component known as reflection.\nA fraction of the incident hard X-ray radiation is naturally absorbed and\nre-emitted as a BB at lower energies, referred to as reprocessed BB. For\ndensities relevant to XRBs and typical ionization values, the reprocessed BB\nmay become significant in the soft X-ray region and should be noticeable in the\nobserved spectra as a consequence of reflection. The absence of any BB\ncomponent in the low/hard state of BH XRB may not be consistent with reflection\nof high irradiating flux observed as power-law from appropriately dense disk of\nXRB. We focus on the low/hard state of the BH XRB MAXI J1820+070. We\nsimultaneously fit the shape and flux of the reflection spectra, allowing us to\nestimate the correct density and ionization of the slab and, correspondingly,\nthe reprocessed BB. Our fitting suggests that the disk in principle may extend\nclose to the BH and still the reprocessed BB due to disk illumination remains\nsmall enough to be consistent with the data as opposed to earlier study. The\ninner reflection component is highly ionized and its fit is primarily driven by\nits contribution to the continuum. The reprocessed BB cannot resolve whether\nthe disk is extended close to the BH or not in the hard state. For this\nspecific observation, the flux in inner reflection component turns out to be\nquite low with respect to outer reflection or power-law. Outflowing slab corona\ncovering the inner region of the disk could be the possible geometry of the\nsource with the underlying disk reaching close to the BH. (shortened)","PeriodicalId":501343,"journal":{"name":"arXiv - PHYS - High Energy Astrophysical Phenomena","volume":"45 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-10","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"arXiv - PHYS - High Energy Astrophysical Phenomena","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/arxiv-2409.06621","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The observed spectra from black hole (BH) X-ray binaries (XRBs) typically
consist of two primary components: multitemperature blackbody (BB) originating
from the accretion disk in soft X-ray, and a power-law like component in hard
X-ray due to Comptonization of soft photons by the hot corona. Illumination of
the disk by the corona gives rise to another key component known as reflection.
A fraction of the incident hard X-ray radiation is naturally absorbed and
re-emitted as a BB at lower energies, referred to as reprocessed BB. For
densities relevant to XRBs and typical ionization values, the reprocessed BB
may become significant in the soft X-ray region and should be noticeable in the
observed spectra as a consequence of reflection. The absence of any BB
component in the low/hard state of BH XRB may not be consistent with reflection
of high irradiating flux observed as power-law from appropriately dense disk of
XRB. We focus on the low/hard state of the BH XRB MAXI J1820+070. We
simultaneously fit the shape and flux of the reflection spectra, allowing us to
estimate the correct density and ionization of the slab and, correspondingly,
the reprocessed BB. Our fitting suggests that the disk in principle may extend
close to the BH and still the reprocessed BB due to disk illumination remains
small enough to be consistent with the data as opposed to earlier study. The
inner reflection component is highly ionized and its fit is primarily driven by
its contribution to the continuum. The reprocessed BB cannot resolve whether
the disk is extended close to the BH or not in the hard state. For this
specific observation, the flux in inner reflection component turns out to be
quite low with respect to outer reflection or power-law. Outflowing slab corona
covering the inner region of the disk could be the possible geometry of the
source with the underlying disk reaching close to the BH. (shortened)