An empirical relation to estimate host galaxy stellar light from AGN spectra

Author:

Jalan Priyanka12ORCID,Rakshit Suvendu2ORCID,Woo Jong-Jak3,Kotilainen Jari4,Stalin C S5ORCID

Affiliation:

1. Center for Theoretical Physics of the Polish Academy of Sciences , Al. Lotników 32/46, PL-02-668 Warsaw, Poland

2. Aryabhatta Research Institute of Observational Sciences (ARIES) , Manora Peak, Nainital, 263002, India

3. Astronomy Program, Department of Physics and Astronomy, Seoul National University , Seoul 151-742, Republic of Korea

4. Finnish Centre for Astronomy with ESO (FINCA) , FI-20014 University of Turku, Finland

5. Indian Institute of Astrophysics, Block II, Koramangala , Bangalore-560034, India

Abstract

ABSTRACT Measurement of black hole mass for low-z (z≤ 0.8) Active Galactic Nuclei (AGNs) is difficult due to the strong contribution from host galaxy stellar light necessitating detailed spectral decomposition to estimate the AGN luminosity. Here, we present an empirical relation to estimate host galaxy stellar luminosity from the optical spectra of AGNs at z ≤ 0.8. The spectral data were selected from the fourteenth data release of the Sloan Digital Sky Survey (SDSS-DR14) quasar catalogue having a signal-to-noise ratio at 5100 Å (SNR5100) >10 containing 11 415 quasars. The median total luminosity (log (Ltotal/[erg s−1])), stellar luminosity (log (Lstar/[erg s−1])), and AGN continuum luminosity ((log Lcont/[erg s−1])) in our sample are 44.52, 44.06, and 44.30, respectively. We fit the AGN power-law continuum, host galaxy, and iron blend contribution, simultaneously over the entire available spectrum. We found the host galaxy fraction to anticorrelate with continuum luminosity and can be well-represented by a polynomial function, which can be used to correct the stellar light contribution from AGN spectra. We also found anticorrelation between host galaxy fraction and iron strength, Eddington ratio, and redshift. The empirical relation gives comparable results of host-fraction with the image decomposition method.

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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