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Chemical Abundances and Globular Clusters of Milky Way Dwarf Galaxies

T0 review · 4 major / 4 minor · reviewed 2026-08-15 · deepseek-v4-flash

Pith's one-line read The paper claims that the least aluminum-rich stars in a globular cluster retain the chemical signature of its birth galaxy, yielding a chemical classification that separates clusters formed inside the Milky Way from those accreted during…

desk verdict A useful but derivative proceedings; the GC chemical dichotomy is plausible yet rests on an uncalibrated lowest-1/3 [Al/Fe] rule, so treat Figure 4 as a hypothesis until the companion paper carries it. read the letter →

arxiv 2608.03312 v1 pith:4F3NBB35 submitted 2026-08-04 astro-ph.GA astro-ph.SR

classification astro-ph.GAastro-ph.SR
keywords chemicalabundancesglobularclustersdwarfgalaxiesMilkyWayaccretionhistoryaluminumabundancemultiplepopulationsgalacticarchaeologystellarnucleosynthesis
verification ladder T0 review T1 audit T2 compute T3 formal

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The reading

This paper reports precise chemical abundances for resolved stars in five classical Milky Way dwarf galaxies and uses them to build a chemical classification of Galactic globular clusters. The central claim is that the least aluminum-rich third of stars in each cluster preserves the composition of the gas from which the cluster formed, so this primordial population carries the fingerprint of the cluster's birth galaxy. On that basis, metal-rich globular clusters separate cleanly in the [Al/Fe] versus [Fe/H] plane into clusters born in the Milky Way and clusters accreted from dwarf galaxies. A correct classification would give astronomers a way to read the Galaxy's merger history directly from stellar abundances, without relying on orbits that later dynamical evolution may have scrambled.

What carries the argument

The load-bearing object is the [Al/Fe] ratio of the primordial population of a globular cluster, recovered by taking the lowest third of the cluster's [Al/Fe] distribution. The argument assumes that internal enrichment processes only add aluminum to some stars, so the least aluminum-rich stars sample the original birth gas. The classification then reads the [Al/Fe]-[Fe/H] plane: a metallicity cut at [Fe/H] = -1.5 delimits the chemically distinguishable regime, and a dividing line in [Al/Fe] separates in-situ clusters with high [Al/Fe] from accreted ones with low [Al/Fe]. The physical mechanism invoked is nucleosynthetic: aluminum is produced through neutron-rich 22Ne derived from CNO-cycle nitrogen, making the yield metallicity dependent, and the different epochs at which Type Ia supernovae begin to dominate iron production in the Milky Way versus low-mass galaxies set the two tracks apart.

What would settle it

If the classification is real, high-resolution spectra of individual stars in metal-rich globular clusters should show that each cluster's [Al/Fe] floor matches the field-star [Al/Fe] of its proposed host galaxy at the same [Fe/H]; showing that the floor moves with the chosen percentile cut, or that it is uncorrelated with host-galaxy chemistry, would falsify the claim.

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Extended reading notes

Core claim

The paper establishes a chemically based origin tag for metal-rich Galactic globular clusters. Taking the lowest third of each cluster's [Al/Fe] distribution to represent its primordial population, it shows that clusters with [Fe/H] greater than -1.5 separate into distinct groups: the primordial populations of in-situ clusters have significantly higher [Al/Fe], matching the elevated values seen in metal-rich Milky Way field stars, while accreted clusters sit near [Al/Fe] about -0.5, matching dwarf galaxy field stars. The distinction is attributed to different chemical evolution pathways: aluminum yields grow with metallicity through CNO-cycle neutron production, while Type Ia supernovae begin to dominate iron production at [Fe/H] near -1.5 in low-mass galaxies but only near -0.8 in the Milky Way. The paper compares this chemical classification with a dynamical classification and finds good agreement, with two clusters reassigned, and independent evidence supporting the chemical assignment for one of them.

Load-bearing premise

The central claim rests on the assumption that the lowest third of each globular cluster's [Al/Fe] distribution is the unpolluted primordial population, so its aluminum level records the birth galaxy's chemistry rather than internal enrichment or measurement scatter.

Editorial extensions

If this is right

  • Galactic globular clusters can be tagged as native or accreted from their stellar abundances alone, without relying on orbits that mergers may have scrambled.
  • The classification can be applied to any cluster with resolved [Al/Fe] measurements, including clusters whose dynamical association with a progenitor is ambiguous.
  • The dichotomy predicts that primordial populations of accreted metal-rich clusters should match the field-star [Al/Fe] of the dwarf galaxy that delivered them, allowing clusters to be matched to specific merger remnants.
  • The correlation between multiple populations and cluster metallicity and compactness implies that environment controls whether globular clusters develop chemically distinct subpopulations, connecting cluster physics to galaxy evolution.
  • Nitrogen-rich field stars in Fornax, interpreted as escaped stars of disrupted globular clusters, give a way to count destroyed clusters and constrain the duty cycle of globular cluster formation in dwarf galaxies.

Reading between the lines

Editorial extensions of the paper, not claims the author makes directly.

  • If the lowest-third rule can be calibrated on clusters with independently known origins, the same cutoff could be applied to extragalactic globular cluster systems, giving a chemical accretion diagnostic beyond the Milky Way.
  • The classification could be tested by forward simulations of multiple populations: synthetic clusters with a known primordial [Al/Fe] and a prescribed enrichment spread should reproduce the observed dichotomy only if the lowest-third statistic recovers the true floor.
  • The same low-[Al/Fe] selection might identify escaped globular cluster stars in other dwarf galaxies; the absence of nitrogen-rich stars in low-mass dwarfs suggests a threshold galaxy mass below which globular clusters do not form.
  • Combining the chemical tag with precise cluster ages could separate clusters formed in the same progenitor at different times, refining the reconstruction of individual accretion events.
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Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, and a circularity audit.

Referee Report

4 major / 4 minor

Summary. The manuscript is a proceedings contribution from the GASTRONOMI project. It reports BACCHUS-based APOGEE chemical abundances for five classical dwarf galaxies, radial-gradient measurements in Sculptor and Fornax, a GalIMF chemical evolution fit for Sculptor, a discussion of multiple populations in star clusters as a function of galactic environment, the detection of four nitrogen-rich field stars in Fornax, and a new chemical classification of Galactic globular clusters. The classification selects the lowest one-third of the [Al/Fe] distribution in each globular cluster to represent its primordial population, then uses the [Al/Fe] versus [Fe/H] plane to divide metal-rich GCs into in-situ and accreted groups, with a comparison to the MKH dynamical classification.

Significance. If the central classification is sound, the paper offers a useful, abundance-based tool for Galactic archaeology and makes a falsifiable prediction that the primordial [Al/Fe] of metal-rich globular clusters separates in-situ from accreted birth environments. Strengths include the established BACCHUS/Turbospectrum abundance pipeline, the use of homogeneous APOGEE GC abundances from Mészáros et al. (2020), an explicit comparison with an independent dynamical scheme, and reliance on companion papers for full derivations of membership and error budgets. The significance is provisional, because the load-bearing lowest-one-third rule is presented without independent calibration or robustness testing.

major comments (4)
  1. [Section 4] The statement that "we selected the lowest 1/3 populations in the [Al/Fe] distribution for each GC" is an uncalibrated operational rule rather than a tested estimator of the primordial population. The paper provides no test that the lower envelope is unpolluted: in clusters whose enriched stars outnumber primordial stars, the lowest third can still include contaminated stars, while in clusters with only a handful of APOGEE members the lowest-third mean is dominated by measurement scatter and outliers. A robustness test using different fractions (e.g., 1/4 or 1/2) or bootstrap resampling is needed before the separation in Figure 4 can be interpreted as physical rather than as an artifact of the selection rule.
  2. [Section 4] The validation against the MKH dynamical classification is described as "generally good", but no quantitative agreement statistic is given, and the same section cites Pagnini et al. (2023) to argue that dynamical criteria alone are problematic. Since the text does not establish why MKH should be the benchmark in the face of its own critique, the two exceptions (NGC 288 and M4) cannot be cleanly attributed to either scheme, and the comparison should be framed as indicative rather than as a decisive validation.
  3. [Section 2 / Figure 2] The [Al/Fe] dichotomy between metal-rich Milky Way stars and dwarf galaxy stars, which underpins the GC classification, is based on comparing literature samples analyzed with different pipelines (e.g., Fulbright 2000; Cayrel et al. 2004; Reddy et al. 2003, 2006; Bensby et al. 2014) against BACCHUS/APOGEE measurements. A systematic offset in [Al/Fe] of even 0.1-0.2 dex between these samples could shift the dividing line in Figure 4; the paper should quantify or discuss these cross-pipeline systematics.
  4. [Section 3] The inference that low-mass dwarf galaxies lack nitrogen-rich field stars is based on very small samples (Scl 43, Car 19, Dra 14, and Sex 8 stars). The absence of N-rich stars in these systems is interesting, but it should be presented with a completeness or upper-limit analysis rather than as a firm detection of a deficiency of disrupted globular clusters in such galaxies.
minor comments (4)
  1. [Section 2, Eq. (2.1)] Equation (2.1) uses the symbol tau for the star formation timescale, while the subsequent text introduces an SN Ia delay time of 100 Myr without a distinct symbol; please make the notation unambiguous.
  2. [Figure 4] The caption does not define the grey "cannot identify origin" region or the dashed dividing line in terms of the plotted quantities, although the main text gives the [Fe/H] < -1.5 cut; please add these criteria to the caption for self-containedness.
  3. [Figure 3] The dashed line in Figure 3 is described as a proposed limit between clusters with and without multiple populations, but no functional form or definition is given; please specify how the line is defined.
  4. [References] There are minor reference formatting issues, including a stray comma in the Masseron et al. (2016) entry and missing diacritics in Mészáros et al. (2020); please check the bibliography against the journal style.

Circularity Check

0 steps flagged · score 0.0 of 10

No significant circularity: the GC chemical classification is compared with the independent MKH dynamical benchmark, and the dwarf-galaxy abundance data are external inputs, not outputs of the same derivation.

full rationale

The derivation chain is self-contained rather than circular. Dwarf-galaxy abundances (Tang et al. 2023; Xu et al. 2026) and GC abundances (Mészáros et al. 2020) are independent observational datasets, and the field-star [Al/Fe] dichotomy in Figure 2 is not used to label the GCs in Figure 4. The in-situ/accreted labels shown there are taken from the MKH dynamical classification, an external benchmark, and the chemical separation is then compared with MKH rather than fitted to it. The 'lowest 1/3' rule is an uncalibrated operational definition of the primordial population, and the dashed separating line has no quoted functional form; these are robustness and reproducibility concerns that could make the classification fragile, but they do not make the claimed dichotomy an identity or a fitted parameter renamed as a prediction. The only overlapping-author citation (Lin et al. 2025) refers to the companion paper reporting the same GC result; because Figure 4 displays the relevant data and the MKH comparison provides independent support, this self-citation is not load-bearing. No step in the paper reduces, by construction, to its own inputs.

Assumptions & free parameters 5 free parameters · 7 assumptions · 0 invented entities

The central claim rests on observational membership, spectral synthesis, chemical evolution inputs, and a hand-set definition of primordial populations. No new physical entities are introduced, and no part of the classification is formally verified in this proceedings.

free parameters (5)
  • Sculptor SFR normalization R = 0.05 M_sun/yr
    Best-fit parameter in the delayed-tau star formation history (Eq. 2.1) used to reproduce Sculptor's present-day stellar mass and mean metallicity; a fit, not a prediction.
  • Sculptor star formation timescale tau = 150 Myr
    Best-fit e-folding timescale in Eq. 2.1; controls the chemical evolution track and the resulting [Fe/H] distribution.
  • SN Ia delay time = 100 Myr
    Preferred delay time in the GCE fit; tuned to match abundance trends and consistent with de los Reyes et al. (2022).
  • primordial population fraction = 1/3 (lowest [Al/Fe] third)
    Hand-chosen threshold in Section 4 to define each globular cluster's primordial population; the classification result depends on this fraction.
  • metallicity cut for GC classification = [Fe/H] > -1.5
    Hand-chosen boundary in Section 4; the [Al/Fe]-based classification is only applied above this metallicity and is stated to fail below it.
assumptions (7)
  • domain assumption LTE plane-parallel spectral synthesis (BACCHUS/Turbospectrum) recovers accurate abundances from APOGEE R~22000 NIR spectra.
    Invoked in Section 2 for all [X/Fe] measurements; systematic abundance errors would propagate into the [Al/Fe] dichotomy and GC classification.
  • domain assumption APOGEE member stars in Sculptor, Fornax, Carina, Draco, and Sextans are true members of those galaxies.
    Member selection is inherited from Tang et al. (2023) and Xu et al. (2026); foreground contamination would blur the trends in Figures 1 and 2.
  • domain assumption The delayed-tau star formation history in Eq. (2.1) describes Sculptor's star formation.
    Assumed in the GCE fit; the functional form is not derived from data, and the fitted R and tau partially determine the abundance tracks.
  • domain assumption Literature yield tables (Karakas 2010; Limongi and Chieffi 2018; Iwamoto et al. 1999) and IGIMF theory (Yan et al. 2017, 2019) are valid inputs.
    Used in the GalIMF chemical evolution model in Section 2; these external inputs are not independently verified in this paper.
  • ad hoc to paper The lowest one-third of each globular cluster's [Al/Fe] distribution is the unpolluted primordial population.
    Operational definition in Section 4; if internal Al pollution affects the lower envelope, the in-situ and accreted separation is an artifact.
  • domain assumption Globular cluster primordial populations inherit the [Al/Fe] signature of their host galaxy in the same way as field stars.
    The classification extends the field-star dichotomy from Figure 2 to GCs; no direct calibration is provided in the proceedings.
  • domain assumption The nucleosynthetic pathway described, with 22Ne as a neutron source during He burning, is the main driver of [Al/Fe] differences.
    Used at the end of Section 4 to explain why in-situ and accreted systems differ; if the yield dependence on metallicity is different, the explanation changes.

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Pith. "Pith review of Chemical Abundances and Globular Clusters of Milky Way Dwarf Galaxies." pith.science (2026). https://pith.science/paper/4F3NBB35

@misc{pith2026260803312,
  author       = {Pith},
  title        = {Pith review of: Chemical Abundances and Globular Clusters of Milky Way Dwarf Galaxies},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/4F3NBB35}},
  note         = {Machine review of arXiv:2608.03312}
}
read the original abstract

We present an overview of our ongoing GASTRONOMI project, which investigates the coevolution of the Milky Way (MW), its satellite dwarf galaxies, and their star clusters through chemo-dynamical analysis. We derive precise chemical abundances for stars in five classical dwarf galaxies, which reveal mass-dependent chemical evolution, particularly in alpha elements, such as [Si/Fe]. A distinct dichotomy in [Al/Fe] is found between metal-rich ([Fe/H]>-1.5) stars formed in-situ in the MW and those originating in dwarf galaxies. Star clusters act as sensitive environmental probes. The presence of multiple populations correlates with galactic evolution, and nitrogen-rich stars in Fornax are likely relics of disrupted globular clusters (GCs). We developed a chemical classification for Galactic GCs, isolating primordial populations by their low [Al/Fe]. This places in-situ and accreted GCs in distinct regions of the [Al/Fe]-[Fe/H] plane, providing a new tool to reconstruct the Galaxy's accretion history.

Figures

Figures reproduced from arXiv: 2608.03312 by the authors.

Figure 1
Figure 1. [Si/Fe] vs. [Fe/H]. Scl, Fnx, Dra, Car and Sex stars from Tang et al. (2023) and Xu et al. (2026) are labeled as yellow-green, red, cyan, blue and green stars respectively. The error bars indicate the median uncertainties of available measurements. Black dots correspond to MW stars from the halo (Fulbright 2000; Cayrel et al. 2004; Barklem et al. 2005; Yong et al. 2013; Roederer et al. 2014), and MW stars from the d… view at source ↗
Figure 2
Figure 2. [Al/Fe] vs. [Fe/H] relations. Symbols are the same as in [PITH_FULL_IMAGE:figures/full_fig_p003_2.png] view at source ↗
Figure 3
Figure 3. Star clusters older than 1.5 Gyr in the [Fe/H] vs. cluster compactness plane. Cluster compactness is defined as the ratio of the initial stellar mass M⋆ to the half-mass radius rh, scaled by 105 M⊙ and in parsecs (Krause et al. 2016). Circles and triangles indicate clusters with and without MPs, respectively. Clusters with red edges are greater than 50 kpc from the galactic center. Their ages are indicated by their … view at source ↗
Figures from the paper (1 more)
Figure 4
Figure 4. Figure 4: Mean [Al/Fe] versus mean [Fe/H] of primordial populations in Galactic GCs. Their associated standard deviations are shown as error bars. The primordial populations are defined as the lowest 1/3 in the [Al/Fe] distribution within each cluster. The black dotted line indi…

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Works this paper leans on

101 extracted references · 50 canonical work pages

  1. [1]

    & Plez , B

    Alvarez , R. & Plez , B. 1998, Near-infrared narrow-band photometry of M-giant and Mira stars: models meet observations . , 330, 1109--1119

  2. [2]

    Amorisco , N. C. & Evans , N. W. 2012, A Troublesome Past: Chemodynamics of the Fornax Dwarf Spheroidal . , 756(1), L2

  3. [3]

    S., Christlieb , N., Beers , T

    Barklem , P. S., Christlieb , N., Beers , T. C., Hill , V., Bessell , M. S., Holmberg , J., Marsteller , B., Rossi , S., Zickgraf , F. J., & Reimers , D. 2005, The Hamburg/ESO R-process enhanced star survey (HERES). II. Spectroscopic analysis of the survey sample . , 439(1), 129--151

  4. [4]

    J., Letarte , B., Jablonka , P., Hill , V., Venn , K

    Battaglia , G., Tolstoy , E., Helmi , A., Irwin , M. J., Letarte , B., Jablonka , P., Hill , V., Venn , K. A., Shetrone , M. D., Arimoto , N., Primas , F., Kaufer , A., Francois , P., Szeifert , T., Abel , T., & Sadakane , K. 2006, The DART imaging and CaT survey of the Fornax dwarf spheroidal galaxy . , 459(2), 423--440

  5. [5]

    W., Koposov , S

    Belokurov , V., Erkal , D., Evans , N. W., Koposov , S. E., & Deason , A. J. 2018, Co-formation of the disc and the stellar halo . , 478(1), 611--619

  6. [6]

    L., Fattahi , A., Smith , M

    Belokurov , V., Sanders , J. L., Fattahi , A., Smith , M. C., Deason , A. J., Evans , N. W., & Grand , R. J. J. 2020, The biggest splash . , 494(3), 3880--3898

  7. [7]

    Bensby , T., Feltzing , S., & Oey , M. S. 2014, Exploring the Milky Way stellar disk. A detailed elemental abundance study of 714 F and G dwarf stars in the solar neighbourhood . , 562, A71

  8. [8]

    L., Cassisi , S., Aparicio , A., Piotto , G., Valdes , F., & Walker , A

    Bettinelli , M., Hidalgo , S. L., Cassisi , S., Aparicio , A., Piotto , G., Valdes , F., & Walker , A. R. 2019, The star formation history of the Sculptor dwarf spheroidal galaxy . , 487(4), 5862--5873

Show all 101 references
  1. [9]

    2004, First stars V - Abundance patterns from C to Zn and supernova yields in the early Galaxy

    Cayrel , R., Depagne , E., Spite , M., Hill , V., Spite , F., Fran c ois , P., Plez , B., Beers , T., Primas , F., Andersen , J., Barbuy , B., Bonifacio , P., Molaro , P., & Nordstr \"o m , B. 2004, First stars V - Abundance patterns from C to Zn and supernova yields in the ea...

  2. [10]

    2025, Cluster Ages to Reconstruct the Milky Way Assembly (CARMA): III

    Ceccarelli , E., Massari , D., Aguado-Agelet , F., Mucciarelli , A., Cassisi , S., Monelli , M., Pancino , E., Salaris , M., & Saracino , S. 2025, Cluster Ages to Reconstruct the Milky Way Assembly (CARMA): III. NGC 288 as the first Splashed globular cluster . , 704, A256

  3. [11]

    & Gnedin , O

    Chen , Y. & Gnedin , O. Y. 2023, Formation of globular clusters in dwarf galaxies of the Local Group . , 522(4), 5638--5653

  4. [12]

    2020, Ages and kinematics of chemically selected, accreted Milky Way halo stars

    Das, P., Hawkins, K., & Jofré, P. 2020, Ages and kinematics of chemically selected, accreted Milky Way halo stars. MNRAS , 493(4), 5195--5207

  5. [13]

    de los Reyes , M. A. C., Kirby , E. N., Ji , A. P., & Nu \ n ez , E. H. 2022, Simultaneous Constraints on the Star Formation History and Nucleosynthesis of Sculptor dSph . , 925(1), 66

  6. [14]

    G., Beers , T

    Fern \'a ndez-Trincado , J. G., Beers , T. C., Minniti , D., Carigi , L., Barbuy , B., Placco , V. M., Moni Bidin , C., Villanova , S., Roman-Lopes , A., & Nitschelm , C. 2020, Discovery of a Large Population of Nitrogen-enhanced Stars in the Magellanic Clouds . , 903(1), L17

  7. [15]

    G., Beers , T

    Fern \'a ndez-Trincado , J. G., Beers , T. C., Tang , B., Moreno , E., P \'e rez-Villegas , A., & Ortigoza-Urdaneta , M. 2019, Chemodynamics of newly identified giants with a globular cluster like abundance patterns in the bulge, disc, and halo of the Milky Way . , 488(2), 2864--2880

  8. [16]

    Fulbright , J. P. 2000, Abundances and Kinematics of Field Halo and Disk Stars. I. Observational Data and Abundance Analysis . , 120(4), 1841--1852

  9. [17]

    J., Brook , C

    Gallart , C., Bernard , E. J., Brook , C. B., Ruiz-Lara , T., Cassisi , S., Hill , V., & Monelli , M. 2019, Uncovering the birth of the Milky Way through accurate stellar ages with Gaia . Nature Astronomy , 3, 932--939

  10. [18]

    V., Wallerstein , G., Gonzalez , G., & Charbonnel , C

    Geisler , D., Smith , V. V., Wallerstein , G., Gonzalez , G., & Charbonnel , C. 2005, ``Sculptor-ing'' the Galaxy? The Chemical Compositions of Red Giants in the Sculptor Dwarf Spheroidal Galaxy . , 129(3), 1428--1442

  11. [19]

    E., Harris , G

    Harris , W. E., Harris , G. L., & Hudson , M. J. 2015, Dark Matter Halos in Galaxies and Globular Cluster Populations. II. Metallicity and Morphology . , 806(1), 36

  12. [20]

    R., Lian , J., Weinberg , D

    Hasselquist , S., Hayes , C. R., Lian , J., Weinberg , D. H., Zasowski , G., Horta , D., Beaton , R., Feuillet , D. K., Garro , E. R., Gallart , C., Smith , V. V., Holtzman , J. A., Minniti , D., Lacerna , I., Shetrone , M., J \"o nsson , H., Cioni , M.-R. L., Fillingham , S. ...

  13. [21]

    H., Massari , D., Veljanoski , J., & Brown , A

    Helmi , A., Babusiaux , C., Koppelman , H. H., Massari , D., Veljanoski , J., & Brown , A. G. A. 2018, The merger that led to the formation of the Milky Way's inner stellar halo and thick disk . , 563(7729), 85--88

  14. [22]

    A., Shetrone , M

    Hill , V., Sk \'u lad \'o ttir , \'A ., Tolstoy , E., Venn , K. A., Shetrone , M. D., Jablonka , P., Primas , F., Battaglia , G., de Boer , T. J. L., Fran c ois , P., Helmi , A., Kaufer , A., Letarte , B., Starkenburg , E., & Spite , M. 2019, VLT/FLAMES high-resolution chemica...

  15. [23]

    A., Wang , Y., Nie , J., Dias , B., & Fern \'a ndez-Trincado , J

    Huang , R., Tang , B., Li , C., Geisler , D., Mateo , M., Song , Y.-Y., Baumgardt , H., Carballo-Bello , J. A., Wang , Y., Nie , J., Dias , B., & Fern \'a ndez-Trincado , J. G. 2024, Driving factors behind multiple populations . Science China Physics, Mechanics, and Astronomy ...

  16. [24]

    R., & Thielemann , F.-K

    Iwamoto , K., Brachwitz , F., Nomoto , K., Kishimoto , N., Umeda , H., Hix , W. R., & Thielemann , F.-K. 1999, Nucleosynthesis in Chandrasekhar Mass Models for Type IA Supernovae and Constraints on Progenitor Systems and Burning-Front Propagation . , 125(2), 439--462

  17. [25]

    Karakas , A. I. 2010, Updated stellar yields from asymptotic giant branch models . , 403(3), 1413--1425

  18. [26]

    N., Lanfranchi , G

    Kirby , E. N., Lanfranchi , G. A., Simon , J. D., Cohen , J. G., & Guhathakurta , P. 2011, Multi-element Abundance Measurements from Medium-resolution Spectra. III. Metallicity Distributions of Milky Way Dwarf Satellite Galaxies . , 727(2), 78

  19. [27]

    2006, Galactic Chemical Evolution: Carbon through Zinc

    Kobayashi , C., Umeda , H., Nomoto , K., Tominaga , N., & Ohkubo , T. 2006, Galactic Chemical Evolution: Carbon through Zinc . , 653(2), 1145--1171

  20. [28]

    Krause , M. G. H., Charbonnel , C., Bastian , N., & Diehl , R. 2016, Gas expulsion in massive star clusters?. Constraints from observations of young and gas-free objects . , 587, A53

  21. [29]

    Law , D. R. & Majewski , S. R. 2010, Assessing the Milky Way Satellites Associated with the Sagittarius Dwarf Spheroidal Galaxy . , 718(2), 1128--1150

  22. [30]

    & Chieffi , A

    Limongi , M. & Chieffi , A. 2018, Presupernova Evolution and Explosive Nucleosynthesis of Rotating Massive Stars in the Metallicity Range -3 [Fe/H] 0 . , 237(1), 13

  23. [31]

    G., Geisler , D., Worthey , G., & Minniti , D

    Lin , S., Tang , B., Liu , G., Fern \'a ndez-Trincado , J. G., Geisler , D., Worthey , G., & Minniti , D. 2025, Revealing the Origins of Galactic Globular Clusters via their Mg Al Abundances . , 989(2), L37

  24. [32]

    R., Skrutskie , M

    Majewski , S. R., Skrutskie , M. F., Weinberg , M. D., & Ostheimer , J. C. 2003, A Two Micron All Sky Survey View of the Sagittarius Dwarf Galaxy. I. Morphology of the Sagittarius Core and Tidal Arms . , 599(2), 1082--1115

  25. [33]

    H., & Helmi , A

    Massari , D., Koppelman , H. H., & Helmi , A. 2019, Origin of the system of globular clusters in the Milky Way . , 630, L4

  26. [34]

    Masseron , T., Merle , T., & Hawkins , K. 2016,. BACCHUS: Brussels Automatic Code for Characterizing High accUracy Spectra . Astrophysics Source Code Library, record ascl:1605.004

  27. [35]

    A., Allende Prieto , C., Beers , T

    M \'e sz \'a ros , S., Masseron , T., Garc \' a-Hern \'a ndez , D. A., Allende Prieto , C., Beers , T. C., Bizyaev , D., Chojnowski , D., Cohen , R. E., Cunha , K., Dell'Agli , F., Ebelke , G., Fern \'a ndez-Trincado , J. G., Frinchaboy , P., Geisler , D., Hasselquist , S., He...

  28. [36]

    2023, The distribution of globular clusters in kinematic spaces does not trace the accretion history of the host galaxy

    Pagnini , G., Di Matteo , P., Khoperskov , S., Mastrobuono-Battisti , A., Haywood , M., Renaud , F., & Combes , F. 2023, The distribution of globular clusters in kinematic spaces does not trace the accretion history of the host galaxy . , 673, A86

  29. [37]

    Plez , B. 2012,. Turbospectrum: Code for spectral synthesis . Astrophysics Source Code Library, record ascl:1205.004

  30. [38]

    W., Bullock , J

    Purcell , C. W., Bullock , J. S., Tollerud , E. J., Rocha , M., & Chakrabarti , S. 2011, The Sagittarius impact as an architect of spirality and outer rings in the Milky Way . , 477(7364), 301--303

  31. [39]

    E., Lambert , D

    Reddy , B. E., Lambert , D. L., & Allende Prieto , C. 2006, Elemental abundance survey of the Galactic thick disc . , 367(4), 1329--1366

  32. [40]

    E., Tomkin , J., Lambert , D

    Reddy , B. E., Tomkin , J., Lambert , D. L., & Allende Prieto , C. 2003, The chemical compositions of Galactic disc F and G dwarfs . , 340(1), 304--340

  33. [41]

    U., Preston , G

    Roederer , I. U., Preston , G. W., Thompson , I. B., Shectman , S. A., Sneden , C., Burley , G. S., & Kelson , D. D. 2014, A Search for Stars of Very Low Metal Abundance. VI. Detailed Abundances of 313 Metal-poor Stars . , 147(6), 136

  34. [42]

    A., Tolstoy , E., Primas , F., Hill , V., & Kaufer , A

    Shetrone , M., Venn , K. A., Tolstoy , E., Primas , F., Hill , V., & Kaufer , A. 2003, VLT/UVES Abundances in Four Nearby Dwarf Spheroidal Galaxies. I. Nucleosynthesis and Abundance Ratios . , 125(2), 684--706

  35. [43]

    G., Liu , C., Yu , J., Yan , H., Gao , Q., Shi , J., & Geisler , D

    Tang , B., Fern \'a ndez-Trincado , J. G., Liu , C., Yu , J., Yan , H., Gao , Q., Shi , J., & Geisler , D. 2020, On the Chemical and Kinematic Consistency between N-rich Metal-poor Field Stars and Enriched Populations in Globular Clusters . , 891(1), 28

  36. [44]

    G., Geisler , D., Shi , J., Zamora , O., Worthey , G., & Moreno , E

    Tang , B., Liu , C., Fern \'a ndez-Trincado , J. G., Geisler , D., Shi , J., Zamora , O., Worthey , G., & Moreno , E. 2019, Chemical and Kinematic Analysis of CN-strong Metal-poor Field Stars in LAMOST DR3 . , 871(1), 58

  37. [45]

    Tang , B., Zhang , J., Yan , Z., Zhang , Z., Carigi , L., & Fern \'a ndez-Trincado , J. G. 2023, Near-infrared chemical abundances of stars in the Sculptor dwarf galaxy . , 669, A125

  38. [46]

    2009, Star-Formation Histories, Abundances, and Kinematics of Dwarf Galaxies in the Local Group

    Tolstoy , E., Hill , V., & Tosi , M. 2009, Star-Formation Histories, Abundances, and Kinematics of Dwarf Galaxies in the Local Group . , 47(1), 371--425

  39. [47]

    G., Yan , Z., Huang , R., & Geisler , D

    Xu , C., Qiao , Y., Tang , B., Fern \'a ndez-Trincado , J. G., Yan , Z., Huang , R., & Geisler , D. 2026, APOGEE chemical abundances of stars in the Milky Way satellites Fornax, Sextans, Draco, and Carina . , 708, A259

  40. [48]

    2017, The optimally sampled galaxy-wide stellar initial mass function

    Yan , Z., Jerabkova , T., & Kroupa , P. 2017, The optimally sampled galaxy-wide stellar initial mass function. Observational tests and the publicly available GalIMF code . , 607, A126

  41. [49]

    2019, Chemical evolution of elliptical galaxies with a variable IMF

    Yan , Z., Jerabkova , T., Kroupa , P., & Vazdekis , A. 2019, Chemical evolution of elliptical galaxies with a variable IMF. A publicly available code . , 629, A93

  42. [50]

    E., Bessell , M

    Yong , D., Norris , J. E., Bessell , M. S., Christlieb , N., Asplund , M., Beers , T. C., Barklem , P. S., Frebel , A., & Ryan , S. G. 2013, The Most Metal-poor Stars. III. The Metallicity Distribution Function and Carbon-enhanced Metal-poor Fraction . , 762(1), 27

  43. [51]

    NGC 288 as the first Splashed globular cluster

    Cluster Ages to Reconstruct the Milky Way Assembly (CARMA): III. NGC 288 as the first Splashed globular cluster. , keywords =. doi:10.1051/0004-6361/202554354 , archivePrefix =. 2503.02939 , primaryClass =

  44. [52]

    Nature Astronomy , keywords =

    Uncovering the birth of the Milky Way through accurate stellar ages with Gaia. Nature Astronomy , keywords =. doi:10.1038/s41550-019-0829-5 , archivePrefix =. 1901.02900 , primaryClass =

  45. [53]

    MNRAS , author =

    Ages and kinematics of chemically selected, accreted. MNRAS , author =. 2020 , pages =. doi:10.1093/mnras/stz3537 , abstract =

  46. [54]

    , keywords =

    The distribution of globular clusters in kinematic spaces does not trace the accretion history of the host galaxy. , keywords =. doi:10.1051/0004-6361/202245128 , archivePrefix =. 2210.04245 , primaryClass =

  47. [55]

    , keywords =

    Galactic Chemical Evolution: Carbon through Zinc. , keywords =. doi:10.1086/508914 , archivePrefix =. astro-ph/0608688 , primaryClass =

  48. [56]

    Observational tests and the publicly available GalIMF code

    The optimally sampled galaxy-wide stellar initial mass function. Observational tests and the publicly available GalIMF code. , keywords =. doi:10.1051/0004-6361/201730987 , archivePrefix =. 1707.04260 , primaryClass =

  49. [57]

    A publicly available code

    Chemical evolution of elliptical galaxies with a variable IMF. A publicly available code. , keywords =. doi:10.1051/0004-6361/201936029 , archivePrefix =. 1907.10614 , primaryClass =

  50. [58]

    Planets, Stars and Stellar Systems

    The Stellar and Sub-Stellar Initial Mass Function of Simple and Composite Populations. Planets, Stars and Stellar Systems. Volume 5: Galactic Structure and Stellar Populations , year = 2013, editor =. doi:10.1007/978-94-007-5612-0_4 , adsurl =

  51. [59]

    , keywords =

    Updated stellar yields from asymptotic giant branch models. , keywords =. doi:10.1111/j.1365-2966.2009.16198.x , archivePrefix =. 0912.2142 , primaryClass =

  52. [60]

    , keywords =

    Presupernova Evolution and Explosive Nucleosynthesis of Rotating Massive Stars in the Metallicity Range -3 [Fe/H] 0. , keywords =. doi:10.3847/1538-4365/aacb24 , archivePrefix =. 1805.09640 , primaryClass =

  53. [61]

    , keywords =

    Nucleosynthesis in Chandrasekhar Mass Models for Type IA Supernovae and Constraints on Progenitor Systems and Burning-Front Propagation. , keywords =. doi:10.1086/313278 , archivePrefix =. astro-ph/0002337 , primaryClass =

  54. [62]

    Multi-element Abundance Measurements from Medium-resolution Spectra. III. Metallicity Distributions of Milky Way Dwarf Satellite Galaxies. , keywords =. doi:10.1088/0004-637X/727/2/78 , archivePrefix =. 1011.4937 , primaryClass =

  55. [63]

    Dark Matter Halos in Galaxies and Globular Cluster Populations. II. Metallicity and Morphology. , keywords =. doi:10.1088/0004-637X/806/1/36 , archivePrefix =. 1504.03199 , primaryClass =

  56. [64]

    , keywords =

    The Sagittarius impact as an architect of spirality and outer rings in the Milky Way. , keywords =. doi:10.1038/nature10417 , archivePrefix =. 1109.2918 , primaryClass =

  57. [65]

    , keywords =

    The biggest splash. , keywords =. doi:10.1093/mnras/staa876 , archivePrefix =. 1909.04679 , primaryClass =

  58. [66]

    , keywords =

    ``Sculptor-ing'' the Galaxy? The Chemical Compositions of Red Giants in the Sculptor Dwarf Spheroidal Galaxy. , keywords =. doi:10.1086/427540 , archivePrefix =. astro-ph/0412065 , primaryClass =

  59. [67]

    , keywords =

    Formation of globular clusters in dwarf galaxies of the Local Group. , keywords =. doi:10.1093/mnras/stad1328 , archivePrefix =. 2301.08218 , primaryClass =

  60. [68]

    , keywords =

    Simultaneous Constraints on the Star Formation History and Nucleosynthesis of Sculptor dSph. , keywords =. doi:10.3847/1538-4357/ac332b , archivePrefix =. 2110.01690 , primaryClass =

  61. [69]

    , keywords =

    Co-formation of the disc and the stellar halo. , keywords =. doi:10.1093/mnras/sty982 , archivePrefix =. 1802.03414 , primaryClass =

  62. [70]

    A Two Micron All Sky Survey View of the Sagittarius Dwarf Galaxy. I. Morphology of the Sagittarius Core and Tidal Arms. , keywords =. doi:10.1086/379504 , archivePrefix =. astro-ph/0304198 , primaryClass =

  63. [71]

    , keywords =

    APOGEE Chemical Abundance Patterns of the Massive Milky Way Satellites. , keywords =. doi:10.3847/1538-4357/ac25f9 , archivePrefix =. 2109.05130 , primaryClass =

  64. [72]

    VLT/UVES Abundances in Four Nearby Dwarf Spheroidal Galaxies. I. Nucleosynthesis and Abundance Ratios. , keywords =. doi:10.1086/345966 , archivePrefix =. astro-ph/0211167 , primaryClass =

  65. [73]

    , keywords =

    Assessing the Milky Way Satellites Associated with the Sagittarius Dwarf Spheroidal Galaxy. , keywords =. doi:10.1088/0004-637X/718/2/1128 , archivePrefix =. 1005.5390 , primaryClass =

  66. [74]

    , keywords =

    The merger that led to the formation of the Milky Way's inner stellar halo and thick disk. , keywords =. doi:10.1038/s41586-018-0625-x , archivePrefix =. 1806.06038 , primaryClass =

  67. [75]

    , keywords =

    Star-Formation Histories, Abundances, and Kinematics of Dwarf Galaxies in the Local Group. , keywords =. doi:10.1146/annurev-astro-082708-101650 , archivePrefix =. 0904.4505 , primaryClass =

  68. [76]

    , keywords =

    Near-infrared narrow-band photometry of M-giant and Mira stars: models meet observations. , keywords =. doi:10.48550/arXiv.astro-ph/9710157 , archivePrefix =. astro-ph/9710157 , primaryClass =

  69. [77]

    , keywords =

    A Troublesome Past: Chemodynamics of the Fornax Dwarf Spheroidal. , keywords =. doi:10.1088/2041-8205/756/1/L2 , archivePrefix =. 1206.6691 , primaryClass =

  70. [78]

    , keywords =

    The DART imaging and CaT survey of the Fornax dwarf spheroidal galaxy. , keywords =. doi:10.1051/0004-6361:20065720 , archivePrefix =. astro-ph/0608370 , primaryClass =

  71. [79]

    Turbospectrum: Code for spectral synthesis

  72. [80]

    Abundances and Kinematics of Field Halo and Disk Stars. I. Observational Data and Abundance Analysis. , keywords =. doi:10.1086/301548 , archivePrefix =. astro-ph/0006260 , primaryClass =

  73. [81]

    , keywords =

    First stars V - Abundance patterns from C to Zn and supernova yields in the early Galaxy. , keywords =. doi:10.1051/0004-6361:20034074 , archivePrefix =. astro-ph/0311082 , primaryClass =

  74. [82]

    The Most Metal-poor Stars. III. The Metallicity Distribution Function and Carbon-enhanced Metal-poor Fraction. , keywords =. doi:10.1088/0004-637X/762/1/27 , archivePrefix =. 1208.3016 , primaryClass =

  75. [83]

    A Search for Stars of Very Low Metal Abundance. VI. Detailed Abundances of 313 Metal-poor Stars. , keywords =. doi:10.1088/0004-6256/147/6/136 , archivePrefix =. 1403.6853 , primaryClass =

  76. [84]

    , keywords =

    Elemental abundance survey of the Galactic thick disc. , keywords =. doi:10.1111/j.1365-2966.2006.10148.x , archivePrefix =. astro-ph/0512505 , primaryClass =

  77. [85]

    , keywords =

    The chemical compositions of Galactic disc F and G dwarfs. , keywords =. doi:10.1046/j.1365-8711.2003.06305.x , archivePrefix =. astro-ph/0211551 , primaryClass =

  78. [86]

    A detailed elemental abundance study of 714 F and G dwarf stars in the solar neighbourhood

    Exploring the Milky Way stellar disk. A detailed elemental abundance study of 714 F and G dwarf stars in the solar neighbourhood. , keywords =. doi:10.1051/0004-6361/201322631 , archivePrefix =. 1309.2631 , primaryClass =

  79. [87]

    The Hamburg/ESO R-process enhanced star survey (HERES). II. Spectroscopic analysis of the survey sample. , keywords =. doi:10.1051/0004-6361:20052967 , archivePrefix =. astro-ph/0505050 , primaryClass =

  80. [88]

    BACCHUS: Brussels Automatic Code for Characterizing High accUracy Spectra

  81. [89]

    , keywords =

    VLT/FLAMES high-resolution chemical abundances in Sculptor: a textbook dwarf spheroidal galaxy. , keywords =. doi:10.1051/0004-6361/201833950 , archivePrefix =. 1812.01486 , primaryClass =

  82. [90]

    , keywords =

    APOGEE chemical abundances of stars in the Milky Way satellites Fornax, Sextans, Draco, and Carina. , keywords =. doi:10.1051/0004-6361/202555822 , archivePrefix =. 2511.06820 , primaryClass =

  83. [91]

    , keywords =

    Discovery of a Large Population of Nitrogen-enhanced Stars in the Magellanic Clouds. , keywords =. doi:10.3847/2041-8213/abc01d , archivePrefix =. 2010.00024 , primaryClass =

  84. [92]

    , keywords =

    Revealing the Origins of Galactic Globular Clusters via their Mg Al Abundances. , keywords =. doi:10.3847/2041-8213/adf748 , archivePrefix =. 2508.00526 , primaryClass =

  85. [93]

    The Southern clusters and overview

    Homogeneous analysis of globular clusters from the APOGEE survey with the BACCHUS code - II. The Southern clusters and overview. , keywords =. doi:10.1093/mnras/stz3496 , archivePrefix =. 1912.04839 , primaryClass =

  86. [94]

    , keywords =

    Origin of the system of globular clusters in the Milky Way. , keywords =. doi:10.1051/0004-6361/201936135 , archivePrefix =. 1906.08271 , primaryClass =

  87. [95]

    Constraints from observations of young and gas-free objects

    Gas expulsion in massive star clusters?. Constraints from observations of young and gas-free objects. , keywords =. doi:10.1051/0004-6361/201526685 , archivePrefix =. 1512.04256 , primaryClass =

  88. [96]

    , keywords =

    Chemodynamics of newly identified giants with a globular cluster like abundance patterns in the bulge, disc, and halo of the Milky Way. , keywords =. doi:10.1093/mnras/stz1848 , archivePrefix =. 1904.05369 , primaryClass =

  89. [97]

    Science China Physics, Mechanics, and Astronomy , keywords =

    Driving factors behind multiple populations. Science China Physics, Mechanics, and Astronomy , keywords =. doi:10.1007/s11433-023-2332-5 , archivePrefix =. 2401.17584 , primaryClass =

  90. [98]

    , keywords =

    On the Chemical and Kinematic Consistency between N-rich Metal-poor Field Stars and Enriched Populations in Globular Clusters. , keywords =. doi:10.3847/1538-4357/ab7233 , archivePrefix =. 2001.11161 , primaryClass =

  91. [99]

    , keywords =

    Chemical and Kinematic Analysis of CN-strong Metal-poor Field Stars in LAMOST DR3. , keywords =. doi:10.3847/1538-4357/aaf6b1 , archivePrefix =. 1812.01656 , primaryClass =

  92. [100]

    , keywords =

    Near-infrared chemical abundances of stars in the Sculptor dwarf galaxy. , keywords =. doi:10.1051/0004-6361/202244052 , archivePrefix =. 2210.06731 , primaryClass =

  93. [101]

    , keywords =

    The star formation history of the Sculptor dwarf spheroidal galaxy. , keywords =. doi:10.1093/mnras/stz1679 , archivePrefix =. 1906.07042 , primaryClass =

Pith tools

Reviewed August 15, 2026 · model on record in the stance chip above.