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Coevolution of black hole accretion and star formation in galaxies up to z = 3.5

Carraro, R.; Rodighiero, G.; Cassata, P.; Brusa, M.; Shankar, F.; Baronchelli, I.; Daddi, E.; Delvecchio, I.; Franceschini, A.; Griffiths, R.; Gruppioni, C.; López-Navas, E.; Mancini, C.; Marchesi, S.; Negrello, M.; Puglisi, A.; Sani, E.; Suh, H.

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Authors

R. Carraro

G. Rodighiero

P. Cassata

M. Brusa

F. Shankar

I. Baronchelli

E. Daddi

I. Delvecchio

A. Franceschini

R. Griffiths

C. Gruppioni

E. López-Navas

C. Mancini

S. Marchesi

M. Negrello

E. Sani

H. Suh



Abstract

Aims. We study the coevolution between the black hole accretion rate (BHAR) and the star formation rate (SFR) in different phases of galaxy life: main-sequence star-forming galaxies, quiescent galaxies, and starburst galaxies at different cosmic epochs. Methods. We exploited the unique combination of depth and area in the COSMOS field and took advantage of the X-ray data from the Chandra COSMOS-Legacy survey and the extensive multiwavelength ancillary data presented in the COSMOS2015 catalog, including in particular the UVista Ultra-deep observations. These large datasets allowed us to perform an X-ray stacking analysis and combine it with detected sources in a broad redshift interval (0.1 < z < 3.5) with unprecedented statistics for normal star-forming, quiescent, and starburst galaxies. The X-ray luminosity was used to predict the black holeAR, and a similar stacking analysis on farinfrared Herschel maps was used to measure the corresponding obscured SFR for statistical samples of sources in different redshifts and stellar mass bins. Results. We focus on the evolution of the average SFR-stellar mass (M∗) relation and compare it with the BHAR-M∗ relation. This extends previous works that pointed toward the existence of almost linear correlations in both cases. We find that the ratio between BHAR and SFR does not evolve with redshift, although it depends on stellar mass. For the star-forming populations, this dependence on M∗ has a logarithmic slope of ∼0.6 and for the starburst sample, the slope is ∼0.4. These slopes are both at odds with quiescent sources, where the dependence remains constant (log(BHAR/SFR) ∼ −3.4). By studying the specific BHAR and specific SFR, we find signs of downsizing for M∗ and black hole mass (MBH) in galaxies in all evolutionary phases. The increase in black hole massdoubling timescale was particularly fast for quiescents, whose super-massive black holes grew at very early times, while accretion in star-forming and starburst galaxies continued until more recent times. Conclusions. Our results support the idea that the same physical processes feed and sustain star formation and black hole accretion in star-forming galaxies while the starburst phase plays a lesser role in driving the growth of the supermassive black holes, especially at high redshift. Our integrated estimates of the M∗ − MBH relation at all redshifts are consistent with independent determinations of the local M∗ − MBH relation for samples of active galactic nuclei. This adds key evidence that the evolution in the BHAR/SFR is weak and its normalization is relatively lower than that of local dynamical M∗ − MBH relations.

Citation

Carraro, R., Rodighiero, G., Cassata, P., Brusa, M., Shankar, F., Baronchelli, I., …Suh, H. (2020). Coevolution of black hole accretion and star formation in galaxies up to z = 3.5. Astronomy & Astrophysics, 642, Article A65. https://doi.org/10.1051/0004-6361/201936649

Journal Article Type Article
Acceptance Date Jul 20, 2020
Online Publication Date Oct 7, 2020
Publication Date 2020-10
Deposit Date Nov 11, 2020
Publicly Available Date Nov 11, 2020
Journal Astronomy and astrophysics.
Print ISSN 0004-6361
Electronic ISSN 1432-0746
Publisher EDP Sciences
Peer Reviewed Peer Reviewed
Volume 642
Article Number A65
DOI https://doi.org/10.1051/0004-6361/201936649

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Copyright Statement
Carraro, R., Rodighiero, G., Cassata, P., Brusa, M., Shankar, F., Baronchelli, I., Daddi, E., Delvecchio, I., Franceschini, A., Griffiths, R., Gruppioni, C., López-Navas, E., Mancini, C., Marchesi, S., Negrello, M., Puglisi, A., Sani, E. & Suh, H. (2020). Coevolution of black hole accretion and star formation in galaxies up to z = 3.5. Astronomy & Astrophysics 642: A65 reproduced with permission, © ESO.





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