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Thidemann Hansen, TereseORCID iD iconorcid.org/0000-0001-6154-8983
Publications (10 of 24) Show all publications
Webber, K. B., Thidemann Hansen, T., Marshall, J. L., Ji, A. P., Li, T. S., Da Costa, G. S., . . . Usman, S. A. (2026). Detailed Chemical Abundance Analysis of the Brightest Stars in the Turranburra and Willka Yaku Stellar Streams. Astrophysical Journal, 998(1), Article ID 114.
Open this publication in new window or tab >>Detailed Chemical Abundance Analysis of the Brightest Stars in the Turranburra and Willka Yaku Stellar Streams
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2026 (English)In: Astrophysical Journal, ISSN 0004-637X, E-ISSN 1538-4357, Vol. 998, no 1, article id 114Article in journal (Refereed) Published
Abstract [en]

We present a detailed chemical abundance analysis of the three brightest known stars from each of the Turranburra and Willka Yaku stellar streams using high-resolution Magellan/Magellan Inamori Kyocera Echelle spectra. Abundances for 27 elements, ranging from carbon to dysprosium, were derived. Our results support the original classification that Turranburra, with a low average metallicity of [Fe/H] = −2.45 ± 0.07, likely originates from a dwarf galaxy progenitor. Willka Yaku has a low average metallicity of [Fe/H] = −2.35 ± 0.03 with a small scatter in the abundances, consistent with a globular cluster progenitor as suggested by previous studies. Both streams exhibit mild enhancements in neutron-capture elements, with averages of [Eu II/Fe] = 0.47 ± 0.09 for Turranburra and 0.44 ± 0.05 for Willka Yaku, consistent with enrichment from an r-process event. A similar enrichment is observed in other stellar streams, and we further discuss this signature as it relates to the potential enrichment histories of these two streams.

Keywords
Stellar abundances, Chemical abundances, Stellar streams
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-255794 (URN)10.3847/1538-4357/ae2d59 (DOI)001682111000001 ()
Available from: 2026-05-22 Created: 2026-05-22 Last updated: 2026-05-22Bibliographically approved
Thidemann Hansen, T., Racca, M., Beers, T. C., Ezzeddine, R., Frebel, A., Holmbeck, E. M., . . . Sakari, C. M. (2026). Observations of r-Process Enriched Stars. Galaxies, 14(2), Article ID 28.
Open this publication in new window or tab >>Observations of r-Process Enriched Stars
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2026 (English)In: Galaxies, E-ISSN 2075-4434, Vol. 14, no 2, article id 28Article in journal (Refereed) Published
Abstract [en]

About half the elements heavier than iron in the universe, like silver and gold, are created in the rapid neutron-capture (r-)process. However, today, almost 70 years after the theoretical prediction of this process, it is still highly debated in what type of stellar explosions it can take place. One of the best places to search for answers is in ancient, metal-poor stars formed from the enriched gas. Their chemical makeup is like a time capsule, a direct fingerprint of the elements produced by the stellar generations that came before them. Since the first highly r-process-enhanced star, CS 22892-052 was discovered more than 30 years ago, multiple projects like the Hamburg/ESO r-Process Enhanced Star (HERES) survey, the Chemical Evolution of r-process Elements in Stars (CERES) project, and the r-Process Alliance (RPA) have searched for more r-process-enriched stars in the Milky Way. At the same time, numerous r-process-enriched stars have been discovered in stellar streams and dwarf galaxies. Here we present an overview of recent advances in finding r-process-enriched metal-poor stars and what the detailed chemo-dynamical analysis of these stars can tell us about heavy element nucleosynthesis and the astrophysical site(s) of the r-process.

Keywords
stellar nucleosynthesis, stellar evolution, multimessenger astronomy, neutron capture processes
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-255649 (URN)10.3390/galaxies14020028 (DOI)001749658500001 ()2-s2.0-105037514945 (Scopus ID)
Available from: 2026-05-20 Created: 2026-05-20 Last updated: 2026-05-20Bibliographically approved
Atzberger, K. R., Usman, S. A., Ji, A. P., Cullinane, L. R., Erkal, D., Thidemann Hansen, T., . . . Zucker, D. B. (2025). Chemical Abundances in the Leiptr Stellar Stream: A Disrupted Ultra-faint Dwarf Galaxy?. Open Journal of Astrophysics, 8
Open this publication in new window or tab >>Chemical Abundances in the Leiptr Stellar Stream: A Disrupted Ultra-faint Dwarf Galaxy?
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2025 (English)In: Open Journal of Astrophysics, ISSN 2565-6120, Vol. 8Article in journal (Refereed) Published
Abstract [en]

Chemical abundances of stellar streams can be used to determine the nature of a stream’s progenitor. Here we study the progenitor of the recently discovered Leiptr stellar stream, which was previously suggested to be a tidally disrupted halo globular cluster. We obtain high-resolution spectra of five red giant branch stars selected from the Gaia DR2 STREAMFINDER catalog with Magellan/MIKE. One star is a clear non-member. The remaining four stars display chemical abundances consistent with those of a low-mass dwarf galaxy: they have a low mean metallicity, ⟨[Fe/H]⟩ = −2.2; they do not all have identical metallicities; and they display low [α/Fe] ∼ 0 and [Sr/Fe] and [Ba/Fe] ∼ −1. This pattern of low α and neutron-capture element abundances is only found in intact dwarf galaxies with stellar mass ≲ 105 M. Although more data are needed to be certain, Leiptr’s chemistry is consistent with being the lowest-mass dwarf galaxy stream without a known intact progenitor, possibly in the mass range of ultra-faint dwarf galaxies. Leiptr thus preserves a record of one of the lowest-mass early accretion events into the Milky Way.

Keywords
Chemical abundances, Dwarf galaxies, Globular star clusters, High resolution spectroscopy, Stellar streams
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-246478 (URN)10.33232/001c.139013 (DOI)2-s2.0-105008457857 (Scopus ID)
Available from: 2025-09-05 Created: 2025-09-05 Last updated: 2025-09-05Bibliographically approved
Thidemann Hansen, T., Roederer, I. U., Shah, S. P., Ezzeddine, R., Beers, T. C., Frebel, A., . . . Chiti, A. (2025). The R-Process Alliance: Hunting for gold in the near-UV spectrum of 2MASS J05383296âÂ?Â? 5904280. Astronomy and Astrophysics, 697, Article ID A127.
Open this publication in new window or tab >>The R-Process Alliance: Hunting for gold in the near-UV spectrum of 2MASS J05383296âÂ?Â? 5904280
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2025 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 697, article id A127Article in journal (Refereed) Published
Abstract [en]

Context. Over the past few years, the R-Process Alliance (RPA) has successfully carried out a search for stars that are highly enhanced in elements produced via the rapid neutron-capture (r-) process. In particular, the RPA has identified a number of relatively bright, highly r-process-enhanced (r-II) stars, suitable for observations with the Hubble Space Telescope (HST), facilitating abundance derivation of elements such as gold (Au) and cadmium (Cd). Aims. This paper presents the detailed abundances derived for the metal-poor ([Fe/H] = - 2.55) highly r-process-enhanced ([Eu/Fe] = +1.29) r-II star 2MASS J05383296âÂ?Â? 5904280. Methods. One-dimensional local thermodynamic equilibrium (LTE) elemental abundances were derived via equivalent width and spectral synthesis using high-resolution high signal-to-noise near-UV HST/STIS and optical Magellan/MIKE spectra. Results. Abundances were determined for 43 elements, including 26 neutron-capture elements. In particular, abundances of the rarely studied elements Nb, Mo, Cd, Lu, Os, Pt, and Au are derived from the HST spectrum. These results, combined with RPA near-UV observations of two additional r-II stars, increase the number of Cd abundances derived for r-process-enriched stars from seven to ten and Au abundances from four to seven. A large star-to-star scatter is detected for both of these elements, highlighting the need for more detections enabling further investigations, specifically into possible non-LTE effects.

Keywords
Stars: abundances, Stars: chemically peculiar, Stars: kinematics and dynamics, Stars: low-mass, Stars: Population II
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-243929 (URN)10.1051/0004-6361/202554123 (DOI)001488693800017 ()2-s2.0-105005511525 (Scopus ID)
Available from: 2025-06-10 Created: 2025-06-10 Last updated: 2025-06-10Bibliographically approved
Hirai, Y., Beers, T. C., Lee, Y. S., Wanajo, S., Roederer, I. U., Tanaka, M., . . . Sakari, C. M. (2025). The R-process Alliance: Enrichment of r-process Elements in a Simulated Milky Way–like Galaxy. Astrophysical Journal, 990(2), Article ID 125.
Open this publication in new window or tab >>The R-process Alliance: Enrichment of r-process Elements in a Simulated Milky Way–like Galaxy
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2025 (English)In: Astrophysical Journal, ISSN 0004-637X, E-ISSN 1538-4357, Vol. 990, no 2, article id 125Article in journal (Refereed) Published
Abstract [en]

We study the formation of stars with varying amounts of heavy elements synthesized by the rapid neutron-capture process (r-process) based on our detailed cosmological zoom-in simulation of a Milky Way–like galaxy with an N-body/smoothed particle hydrodynamics code, asura. Most stars with no overabundance in r-process elements, as well as the strongly r-process-enhanced (RPE) r-II stars ([Eu/Fe] > +0.7), are formed in dwarf galaxies accreted by the Milky Way within the 6 Gyr after the Big Bang. In contrast, over half of the moderately enhanced r-I stars (+0.3 < [Eu/Fe] ≤ +0.7) are formed in the main in situ disk after 6 Gyr. Our results suggest that the fraction of r-I and r-II stars formed in disrupted dwarf galaxies is larger the higher their [Eu/Fe] is. Accordingly, the most strongly enhanced r-III stars ([Eu/Fe] > +2.0) are formed in accreted components. These results suggest that non-r-process-enhanced stars and r-II stars are mainly formed in low-mass dwarf galaxies that hosted either none or a single neutron star merger, while the r-I stars tend to form in the well-mixed in situ disk. We compare our findings with high-resolution spectroscopic observations of RPE metal-poor stars in the halo and dwarf galaxies, including those collected by the R-Process Alliance. We conclude that observed [Eu/Fe] and [Eu/Mg] ratios can be employed in chemical tagging of the Milky Way’s accretion history.

Keywords
the Milky Way; Galactic archaeology; R-process; Chemical enrichment
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-247331 (URN)10.3847/1538-4357/adf10a (DOI)001564105100001 ()2-s2.0-105015071815 (Scopus ID)
Available from: 2025-09-25 Created: 2025-09-25 Last updated: 2025-09-25Bibliographically approved
Racca, M., Thidemann Hansen, T., Roederer, I. U., Placco, V. M., Frebel, A., Beers, T. C., . . . Thompson, I. B. (2025). The R-Process Alliance: Exploring the cosmic scatter among ten r-process sites with stellar abundances. Astronomy and Astrophysics, 704, Article ID A282.
Open this publication in new window or tab >>The R-Process Alliance: Exploring the cosmic scatter among ten r-process sites with stellar abundances
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2025 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 704, article id A282Article in journal (Refereed) Published
Abstract [en]

Context. The astrophysical origin of the rapid neutron-capture process (r-process), responsible for producing roughly half of the elements heavier than iron, remains uncertain. Detailed chemical signatures from the oldest, most metal-poor stars, which act as fossil records of the earliest nucleosynthesis events, can be used to identify the dominant r-process sites.

Aims. We present a homogeneous chemical abundance analysis of ten r-process element-enhanced stars. These old and metal-poor stars are strongly enriched in r-process elements with minimal contamination from other nucleosynthetic sources. By focusing on this chemically pure sample, we aim to investigate intrinsic variations in the r-process abundance patterns and explore their implications for the nature and potential diversity of r-process sites.

Methods. We performed a detailed chemical abundance analysis of high-resolution, high-signal-to-noise spectra. For each star, we inspected over 1400 individual absorption lines using a combination of equivalent width measurements and spectral synthesis. The analysis was conducted under the assumption of 1D local thermodynamic equilibrium and employing the MOOG radiative transfer code.

Results. We derived abundances for 54 chemical species, including 29 neutron-capture (n-capture) elements, covering the full mass range of the r-process abundance pattern. A kinematic analysis reveals that stars likely originated from ten kinematically distinct systems. Based on this assumption, we used the sample to probe the maximum variation expected from ten independent r-process nucleosynthesis events and computed the intrinsic dispersion of each element relative to Zr and Eu for the light and heavy r-process elements, respectively. This exercise resulted in a remarkably low cosmic scatter across the ten r-process sites enriching these stars; for the rare earth and third peak elements, for example, we find σ[La/Eu] = 0.08 and σ[Os/Eu] = 0.11 dex, while the scatter between light and heavy elements, σ[Zr/Eu], is slightly higher at 0.18 dex.

Conclusions. The elemental abundance patterns across the ten independent r-process sites show remarkably small cosmic dispersions. This minimal dispersion suggests a high degree of uniformity in r-process yields across diverse astrophysical environments.

Keywords
Galaxy: abundances, stars: abundances, stars: chemically peculiar, stars: kinematics and dynamics, stars: low-mass
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-251586 (URN)10.1051/0004-6361/202556947 (DOI)001641457200016 ()2-s2.0-105025668025 (Scopus ID)
Available from: 2026-01-23 Created: 2026-01-23 Last updated: 2026-05-06Bibliographically approved
Thidemann Hansen, T., Simon, J. D., Li, T. S., Sharkey, D., Ji, A. P., Thompson, I. B., . . . Galarza, J. Y. (2024). Chemical Diversity on Small Scales: Abundance Analysis of the Tucana V Ultrafaint Dwarf Galaxy. Astrophysical Journal, 968(1), Article ID 21.
Open this publication in new window or tab >>Chemical Diversity on Small Scales: Abundance Analysis of the Tucana V Ultrafaint Dwarf Galaxy
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2024 (English)In: Astrophysical Journal, ISSN 0004-637X, E-ISSN 1538-4357, Vol. 968, no 1, article id 21Article in journal (Refereed) Published
Abstract [en]

The growing number of Milky Way satellites detected in recent years has introduced a new focus for stellar abundance analysis. Abundances of stars in satellites have been used to probe the nature of these systems and their chemical evolution. However, for most satellites, only centrally located stars have been examined. This paper presents an analysis of three stars in the Tucana V system, one in the inner region and two at ∼10′ (7-10 half-light radii) from the center. We find a remarkable chemical diversity between the stars. One star exhibits enhancements in rapid neutron-capture elements (an r-I star), and another is highly enhanced in C, N, and O but with low neutron-capture abundances (a CEMP-no star). The metallicities of the stars analyzed span more than 1 dex from [Fe/H] = −3.55 to −2.46. This, combined with a large abundance range of other elements like Ca, Sc, and Ni, confirms that Tuc V is an ultrafaint dwarf (UFD) galaxy. The variation in abundances, highlighted by [Mg/Ca] ratios ranging from +0.89 to −0.75, among the stars demonstrates that the chemical enrichment history of Tuc V was very inhomogeneous. Tuc V is only the second UFD galaxy in which stars located at large distances from the galactic center have been analyzed, along with Tucana II. The chemical diversity seen in these two galaxies, driven by the composition of the noncentral member stars, suggests that distant member stars are important to include when classifying faint satellites and that these systems may have experienced more complex chemical enrichment histories than previously anticipated.

National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-235643 (URN)10.3847/1538-4357/ad3a52 (DOI)001248920100001 ()2-s2.0-85195779886 (Scopus ID)
Available from: 2024-11-18 Created: 2024-11-18 Last updated: 2024-11-18Bibliographically approved
Kowkabany, J., Ezzeddine, R., Charbonnel, C., Roederer, I. U., Wang, E. X., Li, Y., . . . Sakari, C. M. (2024). Discovery of a Metal-poor Red Giant Star with the Highest Ultralithium Enhancement. Astrophysical Journal, 973(2), Article ID 125.
Open this publication in new window or tab >>Discovery of a Metal-poor Red Giant Star with the Highest Ultralithium Enhancement
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2024 (English)In: Astrophysical Journal, ISSN 0004-637X, E-ISSN 1538-4357, Vol. 973, no 2, article id 125Article in journal (Refereed) Published
Abstract [en]

We present the discovery of 2MASS J05241392−0336543 (hereafter J0524−0336), a very metal-poor ([Fe/H] = −2.43 ± 0.16), highly r-process-enhanced ([Eu/Fe] = +1.34 ± 0.10) Milky Way halo field red giant star, with an ultrahigh Li abundance of A(Li, 3D, NLTE) = 6.15 ± 0.25 and [Li/Fe] = +7.64 ± 0.25, respectively. This makes J0524−0336 the most lithium-enhanced giant star discovered to date. We present a detailed analysis of the star’s atmospheric stellar parameters and chemical abundance determinations. Additionally, we detect indications of infrared excess, as well as observe variable emission in the wings of the Hα absorption line across multiple epochs, indicative of a potential enhanced mass-loss event with possible outflows. Our analysis reveals that J0524−0336 lies either between the bump and the tip of the red giant branch (RGB), or on the early asymptotic giant branch (e-AGB). We investigate the possible sources of lithium enrichment in J0524−0336, including both internal and external sources. Based on current models and on the observational evidence we have collected, our study shows that J0524−0336 may be undergoing the so-called lithium flash that is expected to occur in low-mass stars when they reach the RGB bump and/or the e-AGB.

National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-237639 (URN)10.3847/1538-4357/ad6004 (DOI)001321515600001 ()2-s2.0-85205669690 (Scopus ID)
Available from: 2025-01-15 Created: 2025-01-15 Last updated: 2025-01-15Bibliographically approved
Simon, J. D., Li, T. S., Ji, A. P., Pace, A. B., Thidemann Hansen, T., Cerny, W., . . . Kirby, E. N. (2024). Eridanus III and DELVE 1: Carbon-rich Primordial Star Clusters or the Smallest Dwarf Galaxies?. Astrophysical Journal, 976(2), Article ID 256.
Open this publication in new window or tab >>Eridanus III and DELVE 1: Carbon-rich Primordial Star Clusters or the Smallest Dwarf Galaxies?
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2024 (English)In: Astrophysical Journal, ISSN 0004-637X, E-ISSN 1538-4357, Vol. 976, no 2, article id 256Article in journal (Refereed) Published
Abstract [en]

We present spectroscopy of the ultra-faint Milky Way satellites Eridanus III (Eri III) and DELVE 1. We identify eight member stars in each satellite and place nonconstraining upper limits on their velocity and metallicity dispersions. The brightest star in each object is very metal poor, at [Fe/H] = −3.1 for Eri III and [Fe/H] = −2.8 for DELVE 1. Both of these stars exhibit large overabundances of carbon and very low abundances of the neutron-capture elements Ba and Sr, and we classify them as CEMP-no stars. Because their metallicities are well below those of the Milky Way globular cluster population, and because no CEMP-no stars have been identified in globular clusters, these chemical abundances could suggest that Eri III and DELVE 1 are dwarf galaxies. On the other hand, the two systems have half-light radii of 8 pc and 6 pc, respectively, which are more compact than any known ultra-faint dwarfs. We conclude that Eri III and DELVE 1 are either the smallest dwarf galaxies yet discovered, or they are representatives of a new class of star clusters that underwent chemical evolution distinct from that of ordinary globular clusters. In the latter scenario, such objects are likely the most primordial star clusters surviving today. These possibilities can be distinguished by future measurements of carbon and/or iron abundances for larger samples of stars or improved stellar kinematics for the two systems.

National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-240671 (URN)10.3847/1538-4357/ad85dd (DOI)001367971700001 ()2-s2.0-85213294930 (Scopus ID)
Available from: 2025-03-13 Created: 2025-03-13 Last updated: 2025-03-13Bibliographically approved
Xylakis-Dornbusch, T., Christlieb, N., Thidemann Hansen, T., Nordlander, T., Webber, K. B. & Marshall, J. (2024). Metallicities for more than 10 million stars derived from Gaia BP/RP spectra. Astronomy and Astrophysics, 687, Article ID A177.
Open this publication in new window or tab >>Metallicities for more than 10 million stars derived from Gaia BP/RP spectra
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2024 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 687, article id A177Article in journal (Refereed) Published
Abstract [en]

Context. The third Gaia Data Release, which includes BP/RP spectra for 219 million sources, has opened a new window into the exploration of the chemical history and evolution of the Milky Way. The wealth of information encapsulated in these data is far greater than their low resolving power (R ~ 50) would suggest at first glance, as shown in many studies. We zeroed in on the use of these data for the purpose of the detection of anewa metal-poor stars, which are hard to find yet essential for understanding several aspects of the origin of the Galaxy, star formation, and the creation of the elements, among other topics. Aims. We strive to refine a metal-poor candidate selection method that was developed with simulated Gaia BP/RP spectra with the ultimate objective of providing the community with both a recipe to select stars for medium and high resolution observations, and a catalog of stellar metallicities. Methods. We used a dataset comprised of GALAH DR3 and SAGA database stars in order to verify and adjust our selection method to real-world data. For that purpose, we used dereddening as a means to tackle the issue of extinction, and then we applied our fine-tuned method to select metal-poor candidates, which we thereafter observed and analyzed. Results. We were able to infer metallicities for GALAH DR3 and SAGA stars with color excesses up to E(B - V) < 1.5 and an uncertainty of I [Fe/H]inf 0.36, which is good enough for the purpose of identifying new metal-poor stars. Further, we selected 26 metal-poor candidates via our method for observations. As spectral analysis showed, 100% of them had [Fe/H] < - 2.0, 57% had [Fe/H] < - 2.5, and 8% had [Fe/H] < - 3.0. We inferred metallicities for these stars with an uncertainty of I [Fe/H]inf 0.31, as was proven when comparing [Fe/H]inf to the spectroscopic [Fe/H]. Finally, we assembled a catalog of metallicities for 10 861 062 stars.

Keywords
Catalogs, Stars: Population II, Surveys
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-238558 (URN)10.1051/0004-6361/202348885 (DOI)001270740500001 ()2-s2.0-85198713469 (Scopus ID)
Available from: 2025-01-28 Created: 2025-01-28 Last updated: 2025-10-07Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0001-6154-8983

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