arXiv Analytics

Sign in

arXiv:1903.05110 [astro-ph.GA]AbstractReferencesReviewsResources

Simultaneous Measurements of Star Formation and Supermassive Black Hole Growth in Galaxies

Alexandra Pope, Lee Armus, Eric Murphy, Susanne Aalto, David Alexander, Philip Appleton, Amy Barger, Matt Bradford, Peter Capak, Caitlin Casey, Vassilis Charmandaris, Ranga Chary, Asantha Cooray, Jim Condon, Tanio Diaz Santos, Mark Dickinson, Duncan Farrah, Carl Ferkinhoff, Norman Grogin, Ryan Hickox, Allison Kirkpatrick, Kohno Kotaro, Allison Matthews, Desika Narayanan, Dominik Riechers, Anna Sajina, Mark Sargent, Douglas Scott, J. D. Smith, Gordon Stacey, Sylvain Veilleux, Joaquin Vieira

Published 2019-03-12Version 1

Galaxies grow their supermassive black holes in concert with their stars, although the relationship between these major galactic components is poorly understood. Observations of the cosmic growth of stars and black holes in galaxies suffer from disjoint samples and the strong effects of dust attenuation. The thermal infrared holds incredible potential for simultaneously measuring both the star formation and black hole accretion rates in large samples of galaxies covering a wide range of physical conditions. Spitzer demonstrated this potential at low redshift, and by observing some of the most luminous galaxies at z~2. JWST will apply these methods to normal galaxies at these epochs, but will not be able to generate large spectroscopic samples or access the thermal infrared at high-redshift. An order of magnitude gap in our wavelength coverage will persist between JWST and ALMA. A large, cold infrared telescope can fill this gap to determine when (in cosmic time), and where (within the cosmic web), stars and black holes co-evolve, by measuring these processes simultaneously in statistically complete and unbiased samples of galaxies to z>8. A next-generation radio interferometer will have the resolution and sensitivity to measure star-formation and nuclear accretion in even the dustiest galaxies. Together, the thermal infrared and radio can uniquely determine how stars and supermassive blackholes co-evolve in galaxies over cosmic time.

Comments: Science White paper submitted to Astro2020 Decadal Survey
Categories: astro-ph.GA
Related articles: Most relevant | Search more
arXiv:1903.06653 [astro-ph.GA] (Published 2019-03-15)
Warm H$_2$ as a probe of massive accretion and feedback through shocks and turbulence across cosmic time
arXiv:1902.05553 [astro-ph.GA] (Published 2019-02-14)
First Results from the TNG50 Simulation: The evolution of stellar and gaseous disks across cosmic time
arXiv:2009.11126 [astro-ph.GA] (Published 2020-09-23)
The Evolution of the Baryons Associated with Galaxies Averaged over Cosmic Time and Space