An extremely young massive clump forming by gravitational collapse in a primordial galaxy
arXiv:1505.01290 · doi:10.1038/nature14409
Abstract
When the cosmic star formation history peaks (z ~ 2), galaxies vigorously fed by cosmic reservoirs are gas dominated and contain massive star-forming clumps, thought to form by violent gravitational instabilities in highly turbulent gas-rich disks. However, a clump formation event has not been witnessed yet, and it is debated whether clumps survive energetic feedback from young stars, thus migrating inwards to form galaxy bulges. Here we report spatially resolved spectroscopy of a bright off-nuclear emission line region in a galaxy at z = 1.987. Although this region dominates the star formation in the galaxy disk, its stellar continuum remains undetected in deep imaging, revealing an extremely young (age < 10 Myr) massive clump, forming through the gravitational collapse of > 10 M of gas. Gas consumption in this young clump is > 10 times faster than in the host galaxy, displaying high star formation efficiency during this phase, in agreement with our hydrodynamic simulations. The frequency of older clumps with similar masses coupled with our initial estimate of their formation rate (~ 2.5 Gyr) supports long lifetimes (~ 500 Myr), favouring scenarios where clumps survive feedback and grow the bulges of present-day galaxies.
Published in May 7 issue of Nature (http://dx.doi.org/10.1038/nature14409)
References in corpus (11)
- Cold streams in early massive hot haloes as the main mode of galaxy formation
- Formation of Massive Galaxies at High Redshift: Cold Streams, Clumpy Disks and Compact Spheroids
- Strong Nebular Line Ratios in the Spectra of z~2-3 Star-forming Galaxies: First Results from KBSS-MOSFIRE
- The rapid formation a large rotating disk galaxy three billion years after the Big Bang
- Rapid formation of exponential disks and bulges at high redshift from the dynamical evolution of clump cluster and chain galaxies
- On the X-ray, optical emission line and black hole mass properties of local Seyfert galaxies
- The Universal Relation of Galactic Chemical Evolution: The Origin of the Mass-Metallicity Relation
- Evidence for Wide-Spread AGN Driven Outflows in the Most Massive z~1-2 Star Forming Galaxies
- Unstable disks at high redshift: Evidence for smooth accretion in galaxy formation
- Metal deficiency in cluster star-forming galaxies at z=2
- Discovering extremely compact and metal-poor, star-forming dwarf galaxies out to z ~ 0.9 in the VIMOS Ultra-Deep Survey
Cited by in corpus (18)
- High-redshift major mergers weakly enhance star formation
- The age of the young bulge-like population in the stellar system Terzan5: linking the Galactic bulge to the high-z Universe
- The MUSE Deep Lensed Field on the Hubble Frontier Field MACS~J0416
- CO emission in distant galaxies on and above the main sequence
- Early results from GLASS-JWST. VII: evidence for lensed, gravitationally bound proto-globular clusters at z=4 in the Hubble Frontier Field A2744
- The merger-starburst connection across cosmic times
- ALMA hints at the presence of turbulent disk galaxies at z > 5
- From giant clumps to clouds I: the impact of gas fraction evolution on the stability of galactic discs
- Merger induced clump formation in distant infrared luminous starburst galaxies
- First Census of Gas-phase Metallicity Gradients of Star-forming Galaxies in Overdense Environments at Cosmic Noon
- Multiply lensed star forming clumps in the A521-sys1 galaxy at redshift 1
- HST Grism-derived Forecasts for Future Galaxy Redshift Surveys
- Clumps as multiscale structures in cosmic noon galaxies
- Scrutiny of a very young, metal-poor star-forming Lyα-emitter at z ~ 3.7
- Stellar feedback in a clumpy galaxy at 3.4
- The possible hierarchical scales of observed clumps in high-redshift disc galaxies
- Bulgeless disks, dark galaxies, inverted color gradients, and other expected phenomena at higher z. The chromatic surface brightness modulation (CMOD) effect
- Analogs of primeval galaxies two billion years after the Big Bang