Optical spectroscopy of blazars for the Cherenkov Telescope Array – II

Active galactic nuclei (AGNs) make up about 35 per cent of the more than 250 sources detected in very high-energy (VHE) gamma rays to date with the imaging atmospheric Cherenkov telescopes. Apart from four nearby radio galaxies and two AGNs of unknown type, all known VHE AGNs are blazars. Knowledge...

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Үндсэн зохиолчид: Kasai, E, Goldoni, P, Pita, S, Williams, DA, Max-Moerbeck, W, Hervet, O, Cotter, G, Backes, M, Boisson, C, Becerra González, J, Barres de Almeida, U, D’Ammando, F, Fallah Ramazani, V, Lindfors, E
Формат: Journal article
Хэл сонгох:English
Хэвлэсэн: Oxford University Press 2022
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author Kasai, E
Goldoni, P
Pita, S
Williams, DA
Max-Moerbeck, W
Hervet, O
Cotter, G
Backes, M
Boisson, C
Becerra González, J
Barres de Almeida, U
D’Ammando, F
Fallah Ramazani, V
Lindfors, E
author_facet Kasai, E
Goldoni, P
Pita, S
Williams, DA
Max-Moerbeck, W
Hervet, O
Cotter, G
Backes, M
Boisson, C
Becerra González, J
Barres de Almeida, U
D’Ammando, F
Fallah Ramazani, V
Lindfors, E
author_sort Kasai, E
collection OXFORD
description Active galactic nuclei (AGNs) make up about 35 per cent of the more than 250 sources detected in very high-energy (VHE) gamma rays to date with the imaging atmospheric Cherenkov telescopes. Apart from four nearby radio galaxies and two AGNs of unknown type, all known VHE AGNs are blazars. Knowledge of the cosmological redshift of gamma-ray blazars is key to enabling the study of their intrinsic emission properties, as the interaction between gamma rays and the extragalactic background light (EBL) results in a spectral softening. Therefore, the redshift determination exercise is crucial to indirectly placing tight constraints on the EBL density, and to studying blazar population evolution across cosmic time. Due to the powerful relativistic jets in blazars, most of their host galaxies’ spectral features are outshined, and dedicated high signal-to-noise (S/N) spectroscopic observations are required. Deep medium- to high-resolution spectroscopy of 33 gamma-ray blazar optical counterparts was performed with the European Southern Observatory, New Technology Telescope, Keck II telescope, Shane 3-metre telescope, and the Southern African Large Telescope. From the sample, spectra from 25 objects display spectral features or are featureless and have high S/N. The other eight objects have low-quality featureless spectra. We systematically searched for absorption and emission features and estimated, when possible, the fractional host galaxy flux in the measured total flux. Our measurements yielded 14 firm spectroscopic redshifts, ranging from 0.0838 to 0.8125, one tentative redshift, and two lower limits: one at z>0.382 and the other at z > 0.629.
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spelling oxford-uuid:30dba3c0-96f0-498f-b830-5d58974566a12022-12-01T09:46:31ZOptical spectroscopy of blazars for the Cherenkov Telescope Array – IIJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:30dba3c0-96f0-498f-b830-5d58974566a1EnglishSymplectic ElementsOxford University Press2022Kasai, EGoldoni, PPita, SWilliams, DAMax-Moerbeck, WHervet, OCotter, GBackes, MBoisson, CBecerra González, JBarres de Almeida, UD’Ammando, FFallah Ramazani, VLindfors, EActive galactic nuclei (AGNs) make up about 35 per cent of the more than 250 sources detected in very high-energy (VHE) gamma rays to date with the imaging atmospheric Cherenkov telescopes. Apart from four nearby radio galaxies and two AGNs of unknown type, all known VHE AGNs are blazars. Knowledge of the cosmological redshift of gamma-ray blazars is key to enabling the study of their intrinsic emission properties, as the interaction between gamma rays and the extragalactic background light (EBL) results in a spectral softening. Therefore, the redshift determination exercise is crucial to indirectly placing tight constraints on the EBL density, and to studying blazar population evolution across cosmic time. Due to the powerful relativistic jets in blazars, most of their host galaxies’ spectral features are outshined, and dedicated high signal-to-noise (S/N) spectroscopic observations are required. Deep medium- to high-resolution spectroscopy of 33 gamma-ray blazar optical counterparts was performed with the European Southern Observatory, New Technology Telescope, Keck II telescope, Shane 3-metre telescope, and the Southern African Large Telescope. From the sample, spectra from 25 objects display spectral features or are featureless and have high S/N. The other eight objects have low-quality featureless spectra. We systematically searched for absorption and emission features and estimated, when possible, the fractional host galaxy flux in the measured total flux. Our measurements yielded 14 firm spectroscopic redshifts, ranging from 0.0838 to 0.8125, one tentative redshift, and two lower limits: one at z>0.382 and the other at z > 0.629.
spellingShingle Kasai, E
Goldoni, P
Pita, S
Williams, DA
Max-Moerbeck, W
Hervet, O
Cotter, G
Backes, M
Boisson, C
Becerra González, J
Barres de Almeida, U
D’Ammando, F
Fallah Ramazani, V
Lindfors, E
Optical spectroscopy of blazars for the Cherenkov Telescope Array – II
title Optical spectroscopy of blazars for the Cherenkov Telescope Array – II
title_full Optical spectroscopy of blazars for the Cherenkov Telescope Array – II
title_fullStr Optical spectroscopy of blazars for the Cherenkov Telescope Array – II
title_full_unstemmed Optical spectroscopy of blazars for the Cherenkov Telescope Array – II
title_short Optical spectroscopy of blazars for the Cherenkov Telescope Array – II
title_sort optical spectroscopy of blazars for the cherenkov telescope array ii
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