TNT photometric reverberation mapping analysis of high-redshift quasars

© Published under licence by IOP Publishing Ltd. Supermassive black hole (SMBH) mass determination is essential for understanding the galaxy-SMBH co-evolution. Photometric reverberation mapping (PRM) has been proposed as an alternative to the traditional method, spectroscopic reverberation mapping (...

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Main Authors: G. Pongsupa, U. Sawangwit, S. Wannawichian, M. Boonmalai, R. Yoyponsan
Format: Conference Proceeding
Published: 2020
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/68053
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Institution: Chiang Mai University
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spelling th-cmuir.6653943832-680532020-04-02T15:18:02Z TNT photometric reverberation mapping analysis of high-redshift quasars G. Pongsupa U. Sawangwit S. Wannawichian M. Boonmalai R. Yoyponsan Physics and Astronomy © Published under licence by IOP Publishing Ltd. Supermassive black hole (SMBH) mass determination is essential for understanding the galaxy-SMBH co-evolution. Photometric reverberation mapping (PRM) has been proposed as an alternative to the traditional method, spectroscopic reverberation mapping (SRM), which has limitation to only relatively low redshift, z, and bright objects. However, the most common and important sample of high-z active galaxies known as quasar or QSO have its populations peak at around z ≈ 2-3 thus out of reach for the SRM. We carried out a proof-of-concept campaign of quasar PRM using the 2.4-m Thai National Telescope (TNT) between 2015-2018. Such a study is important to inform a future wide-field high-cadence survey such as the Large Synoptic Survey Telescope (LSST). Our main sample contains 10 quasars at redshift z ≈ 0.7-1.2 with rSDSS = 19.7-20.7 mag, selected from the SDSS data release 10. The processed data and light curves were analysed using the discrete cross-correlation function (DCF). We used Monte Carlo (MC) simulations to model the noise characteristics and non-uniform coverage of our data as well as to verify robustness of the DCF results. Our analyses show a significant detection of lag time between continuum and broad-line emission bands of the quasar SDSS J081506.93+254124.7 (z = 1.18, rSDSS = 20.5 mag). The estimated broad line region (BLR) distance is 125±20 light-day which equate to the estimated SMBH mass of (4.3±2.0)×108 M #x2299;. 2020-04-02T15:18:02Z 2020-04-02T15:18:02Z 2019-12-16 Conference Proceeding 17426596 17426588 2-s2.0-85077823228 10.1088/1742-6596/1380/1/012135 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85077823228&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/68053
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Physics and Astronomy
spellingShingle Physics and Astronomy
G. Pongsupa
U. Sawangwit
S. Wannawichian
M. Boonmalai
R. Yoyponsan
TNT photometric reverberation mapping analysis of high-redshift quasars
description © Published under licence by IOP Publishing Ltd. Supermassive black hole (SMBH) mass determination is essential for understanding the galaxy-SMBH co-evolution. Photometric reverberation mapping (PRM) has been proposed as an alternative to the traditional method, spectroscopic reverberation mapping (SRM), which has limitation to only relatively low redshift, z, and bright objects. However, the most common and important sample of high-z active galaxies known as quasar or QSO have its populations peak at around z ≈ 2-3 thus out of reach for the SRM. We carried out a proof-of-concept campaign of quasar PRM using the 2.4-m Thai National Telescope (TNT) between 2015-2018. Such a study is important to inform a future wide-field high-cadence survey such as the Large Synoptic Survey Telescope (LSST). Our main sample contains 10 quasars at redshift z ≈ 0.7-1.2 with rSDSS = 19.7-20.7 mag, selected from the SDSS data release 10. The processed data and light curves were analysed using the discrete cross-correlation function (DCF). We used Monte Carlo (MC) simulations to model the noise characteristics and non-uniform coverage of our data as well as to verify robustness of the DCF results. Our analyses show a significant detection of lag time between continuum and broad-line emission bands of the quasar SDSS J081506.93+254124.7 (z = 1.18, rSDSS = 20.5 mag). The estimated broad line region (BLR) distance is 125±20 light-day which equate to the estimated SMBH mass of (4.3±2.0)×108 M #x2299;.
format Conference Proceeding
author G. Pongsupa
U. Sawangwit
S. Wannawichian
M. Boonmalai
R. Yoyponsan
author_facet G. Pongsupa
U. Sawangwit
S. Wannawichian
M. Boonmalai
R. Yoyponsan
author_sort G. Pongsupa
title TNT photometric reverberation mapping analysis of high-redshift quasars
title_short TNT photometric reverberation mapping analysis of high-redshift quasars
title_full TNT photometric reverberation mapping analysis of high-redshift quasars
title_fullStr TNT photometric reverberation mapping analysis of high-redshift quasars
title_full_unstemmed TNT photometric reverberation mapping analysis of high-redshift quasars
title_sort tnt photometric reverberation mapping analysis of high-redshift quasars
publishDate 2020
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85077823228&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/68053
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