Insight Into the Formation of the Milky Way Through Cold Halo Substructure. II. The Elemental Abundances of ECHOS
arXiv:1104.1424 · doi:10.1088/0004-637X/734/1/49
Abstract
We determine the average metallicities of the elements of cold halo substructure (ECHOS) that we previously identified in the inner halo of the Milky Way within 17.5 kpc of the Sun. As a population, we find that stars kinematically associated with ECHOS are chemically distinct from the background kinematically smooth inner halo stellar population along the same Sloan Extension for Galactic Understanding and Exploration (SEGUE) line of sight. ECHOS are systematically more iron-rich, but less alpha-enhanced than the kinematically-smooth component of the inner halo. ECHOS are also chemically distinct from other Milky Way components: more iron-poor than typical thick-disk stars and both more iron-poor and alpha-enhanced than typical thin-disk stars. In addition, the radial velocity dispersion distribution of ECHOS extends beyond sigma ~ 20 km s^-1. Globular clusters are unlikely ECHOS progenitors, as ECHOS have large velocity dispersions and are found in a region of the Galaxy in which iron-rich globular clusters are very rare. Likewise, the chemical composition of stars in ECHOS do not match predictions for stars formed in the Milky Way and subsequently scattered into the inner halo. Dwarf spheroidal (dSph) galaxies are possible ECHOS progenitors, and if ECHOS are formed through the tidal disruption of one or more dSph galaxies, the typical ECHOS [Fe/H] ~ -1.0 and radial velocity dispersion sigma ~ 20 km s^-1 implies a dSph with M_tot >~ 10^9 M_Sun. Our observations confirm the predictions of theoretical models of Milky Way halo formation that suggest that prominent substructures are likely to be metal-rich, and our result implies that the most likely metallicity for a recently accreted star currently in the inner halo is [Fe/H] ~ -1.0.
31 pages and 16 figures, and 3 tables in emulateapj format; accepted for publication in ApJ. Full tables can be extracted from TeX source
References in corpus (23)
- The 2.5 m Telescope of the Sloan Digital Sky Survey
- Two Stellar Components in the Halo of the Milky Way
- alpha-, r-, and s-process element trends in the Galactic thin and thick disks
- The Milky Way Tomography with SDSS: II. Stellar Metallicity
- The SEGUE Stellar Parameter Pipeline. I. Description and Initial Validation Tests
- The accretion origin of the Milky Way's stellar halo
- Tracing Galaxy Formation with Stellar Halos II: Relating Substructure in Phase- and Abundance-Space to Accretion Histories
- The Dual Origin of Stellar Halos
- Detection of a 63 Degree Cold Stellar Stream in the Sloan Digital Sky Survey
- The SEGUE Stellar Parameter Pipeline. II. Validation with Galactic Globular and Open Clusters
- An Orphan in the "Field of Streams"
- The stellar halo of the Galaxy
- The SEGUE Stellar Parameter Pipeline. III. Comparison with High-Resolution Spectroscopy of SDSS/SEGUE Field Stars
- Multi-Element Abundance Measurements from Medium-Resolution Spectra. II. Catalog of Stars in Milky Way Dwarf Satellite Galaxies
- The QUEST RR Lyrae Survey II: The Halo Overdensities in the First Catalog
- The SEGUE Stellar Parameter Pipeline. V. Estimation of Alpha-Element Abundance Ratios From Low-Resolution SDSS/SEGUE Stellar Spectra
- Metallicity and Alpha-Element Abundance Measurement in Red Giant Stars from Medium Resolution Spectra
- Chemical Abundances and Kinematics in Globular Clusters and Local Group Dwarf Galaxies and Their Implications for Formation Theories of the Galactic Halo
- Halo Star Streams in the Solar Neighborhood
- Disassembling the Galaxy with angle-action coordinates
- Is the sky falling? Searching for stellar streams in the local Milky Way disc in the CORAVEL and RAVE surveys
- Chemical Inhomogeneities in the Milky Way Stellar Halo
- An Improved Photometric Calibration of the Sloan Digital Sky Survey Imaging Data
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- The Case for the Dual Halo of the Milky Way
- Carbon-Enhanced Metal-Poor Stars in the Inner and Outer Halo Components of the Milky Way
- Galactic Stellar Populations in the Era of SDSS and Other Large Surveys
- Direct Detection of Dark Matter Debris Flows
- Dark Shards: velocity substructure from Gaia and direct searches for dark matter
- Dynamically Tagged Groups of Very Metal-poor Halo Stars from the HK and Hamburg/ESO Surveys
- Disentangling the Galactic Halo with APOGEE: II. Chemical and Star Formation Histories for the Two Distinct Populations
- Streams in the Aquarius stellar haloes
- Identifying Contributions to the Stellar Halo from Accreted, Kicked-Out, and In Situ Populations
- The Milky Way Tomography with SDSS. V. Mapping the Dark Matter Halo
- Identifying Sagittarius Stream Stars By Their APOGEE Chemical Abundance Signatures
- Deep SDSS optical spectroscopy of distant halo stars II. Iron, calcium, and magnesium abundances
- Another Look at the EBS: A Stellar Debris Stream and a Possible Progenitor
- Does SEGUE/SDSS indicate a dual Galactic halo?
- Dynamically Tagged Groups of Metal-Poor Stars from the Best \& Brightest Survey
- Chasing Accreted Structures within Gaia DR2 using Deep Learning
- Insight Into the Formation of the Milky Way Through Cold Halo Substructure. III. Statistical Chemical Tagging in the Smooth Halo
- Solar and Stellar Photospheric Abundances
- New Signatures of the Milky Way Formation in the Local Halo and Inner Halo Streamers in the Era of Gaia
- Chemo-Dynamical Clustering applied to APOGEE data: Re-Discovering Globular Clusters
- Kinematically Detected Halo Streams
- Evidence That Hydra I is a Tidally Disrupting Milky Way Dwarf Galaxy
- Measuring Detailed Chemical Abundances From Co-added Medium Resolution Spectra I. Tests using Milky Way dwarf spheroidal galaxies and globular clusters
- Characterizing the SHARDS of Disrupted Milky Way Satellites with LAMOST
- Origins and Interpretation of Tidal Debris