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Live Fast, Die $\alpha$-Enhanced: The Mass-Metallicity-$\alpha$ Relation of the Milky Way's Disrupted Dwarf Galaxies

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arxiv 2204.09057 v1 pith:KXQFIJUG submitted 2022-04-19 astro-ph.GA

classification astro-ph.GA
keywords dwarfsdisruptedalphagalaxiesenhancedredshiftssurvivinghigher
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abstract

The Milky Way's satellite galaxies ("surviving dwarfs") have been studied for decades as unique probes of chemical evolution in the low-mass regime. Here we extend such studies to the "disrupted dwarfs", whose debris constitutes the stellar halo. We present abundances ([Fe/H], [$\alpha$/Fe]) and stellar masses for nine disrupted dwarfs with $M_{\star}\approx10^{6}-10^{9}M_{\odot}$ from the H3 Survey (Sagittarius, $Gaia$-Sausage-Enceladus, Helmi Streams, Sequoia, Wukong/LMS-1, Cetus, Thamnos, I'itoi, Orphan/Chenab). The surviving and disrupted dwarfs are chemically distinct: at fixed mass, the disrupted dwarfs are systematically metal-poor and $\alpha$-enhanced. The disrupted dwarfs define a mass-metallicity relation (MZR) with a similar slope as the $z=0$ MZR followed by the surviving dwarfs, but offset to lower metallicities by $\Delta$[Fe/H]$\approx0.3-0.4$ dex. Dwarfs with larger offsets from the $z=0$ MZR are more $\alpha$-enhanced. In simulations as well as observations, galaxies with higher $\Delta$[Fe/H] formed at higher redshifts -- exploiting this, we infer the disrupted dwarfs have typical star-formation truncation redshifts of $z_{\rm{trunc}}{\sim}1-2$. We compare the chemically inferred $z_{\rm{trunc}}$ with dynamically inferred accretion redshifts and find almost all dwarfs are quenched only after accretion. The differences between disrupted and surviving dwarfs are likely because the disrupted dwarfs assembled their mass rapidly, at higher redshifts, and within denser dark matter halos that formed closer to the Galaxy. Our results place novel archaeological constraints on low-mass galaxies inaccessible to direct high-$z$ studies: (i) the redshift evolution of the MZR along parallel tracks but offset to lower metallicities extends to $M_{\star}\approx10^{6}-10^{9}M_{\odot}$; (ii) galaxies at $z\approx2-3$ are $\alpha$-enhanced with [$\alpha$/Fe]$\approx0.4$.

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Forward citations

Cited by 5 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 7 citations worldwide. Full citation record

  1. The heartbeat of stellar halos: Insights from the stellar halo mass-metallicity relation

    astro-ph.GA 2025-12 conditional novelty 6.0 of 10

    Stellar halos in CIELO simulations reach the present-day mass–metallicity relation at a 'stability time' that tracks disruption of the dominant contributing satellite and can be estimated from observed t90 ages.

  2. The chemodynamical memory of a major merger in a NIHAO-UHD Milky Way analogue -- I. A golden thread through time and space

    astro-ph.GA 2025-10 conditional novelty 6.0 of 10

    In a Milky Way analogue simulation, accreted stars from the last major merger retain a measurable memory of their birth radius: core-born stars are more bound and metal-rich, outer-born stars less bound and metal-poor...

  3. Precise Asteroseismic Ages for the Helmi Streams

    astro-ph.SR 2025-07 conditional novelty 5.0 of 10

    Detailed asteroseismic modeling of two Helmi stream red giants yields ages of 11.16 and 12.52 Gyr, indicating the stream's progenitor formed stars at least 12 Gyr ago and that global scaling relations underestimate such ages.

  4. Survivors and Zombies: The Quenching and Disruption of Satellites around Milky Way Analogs

    astro-ph.GA 2025-05 conditional novelty 5.0 of 10

    In cosmological zoom-in simulations, 92% of disrupted satellite dwarfs are star-forming until disruption, 94% of ultra-faint dwarfs survive, and infall mass and time set quenching and disruption fate.

  5. A Novel Approach to Identifying Substructures Through Analysis of Metallicity Distribution Functions

    astro-ph.GA 2025-08 reject novelty 4.0 of 10

    Combining MDF peaks with orbital phase space among retrograde, low-inclination halo stars, the authors identify four substructures (LRS 1-4) and claim LRS 3 as new, plus an embedded stream LRS 2B.

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