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Keywords = stellar nucleosynthesis

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26 pages, 24396 KB  
Review
Direct Experiments of Neutron Capture on Stable and Unstable Isotopes for Stellar Nucleosynthesis Studies
by Jorge Lerendegui-Marco, Javier Balibrea-Correa, Victor Babiano-Suarez, César Domingo-Pardo, Gabriel de la Fuente-Rosales, Bernardo Gameiro, Ion Ladarescu, Ariel Tarifeño-Saldivia, Pablo Torres-Sánchez, Oliver Aberle, Victor Alcayne, Simone Amaducci, Michael Bacak, Jesús Bartolomé, Aparna Basavaraja-Allannavar, Ana-Paula Bernardes, Eric Berthoumieux, Roland Beyer, Matthew Birch, Selin Birincioglu, Marian Boromiza, Damir Bosnar, Benedetta Brusasco, Manuel Caamaño, Aline Cahuzac, Francisco Calviño, Marco Calviani, Daniel Cano-Ott, Adrià Casanovas, Donato Castelluccio, Francesco Cerutti, Gabriele Cescutti, Enrico Chiaveri, Gerardo Claps, Paolo Colombetti, Nicola Colonna, Patrizio Console Camprini, Guillem Cortés, Miguel Cortés-Giraldo, Luigi Cosentino, Sergio Cristallo, Angelica D’Ottavi, Maria Diakaki, Mario Di Castro, Augusto Di Chicco, Mirco Dietz, Emmeric Dupont, Ignacio Durán, Zinovia Eleme, Sylvain Fargier, Martin Farkas, Beatriz Fernández-Domínguez, Paolo Finocchiaro, Will Flanagan, Varvara Foteinou, Valter Furman, Aman Gandhi, Francisco García-Infantes, Aleksandra Gawlik-Ramięga, Gianpiero Gervino, Simone Gilardoni, Enrique González-Romero, Styliani Goula, Erich Griesmayer, Carlos Guerrero, Frank Gunsing, Carlo Gustavino, Jan Heyse, William Hillman, Elizabeth Jacoby, David Jenkins, Erwin Jericha, Arnd Junghans, Ulli Köster, Yacine Kadi, Nasser Kalantar-Nayestanaki, Kalliopi Kaperoni, Myroslav Kavatsyuk, Michael Kokkoris, Sotirios Kopanos, Yury Kopatch, Milan Krtička, Nikolaos Kyritsis, Claudia Lederer-Woods, Giuseppe Lorusso, Alice Manna, Trinitario Martínez, Marco Martínez-Cañada, Alessandro Masi, Cristian Massimi, Pierfrancesco Mastinu, Mario Mastromarco, Emilio-Andrea Maugeri, Annamaria Mazzone, Emilio Mendoza, Alberto Mengoni, Veatriki Michalopoulou, Paolo Milazzo, Jacob Moldenhauer, Riccardo Mucciola, Elizabeth Musacchio González, Agatino Musumarra, Alexandru Negret, Emmanuel Odusina, Dimitrios Papanikolaou, Carlos Paradela, Albert Parmenter, Nikolas Patronis, José Antonio Pavón, Maria Pellegriti, Pablo Pérez-Maroto, Alberto Pérez de Rada Fiol, Giulio Perfetto, Jarosław Perkowski, Cristina Petrone, Nicholas Pieretti, Luciano Piersanti, Elisa Pirovano, Ignacio Porras, Javier Praena, José-Manuel Quesada, René Reifarth, Alejandro Reina, Dimitri Rochman, Yuriy Romanets, Annie Rooney, Gerard Rovira, Carlo Rubbia, Adrián Sánchez-Caballero, Nicolás Sánchez-Vázquez, Rudra N. Sahoo, Daniele Scarpa, Gavin Smith, Nikolay Sosnin, Michele Spelta, Krzysztof Stasiak, Giuseppe Tagliente, Antonella Tamburrino, Diego Tarrío, Giorgios Tsiledakis, Stanislav Valenta, Pedro Vaz, Gianfranco Vecchio, Diego Vescovi, Vasilis Vlachoudis, Rosa Vlastou, Anton Wallner, Christina Weiss, Tobias Wright, Renjie Wu, Roberto Zarrella and Petar Žugecadd Show full author list remove Hide full author list
Galaxies 2026, 14(3), 59; https://doi.org/10.3390/galaxies14030059 - 9 Jun 2026
Viewed by 927
Abstract
Neutron capture reactions provide essential nuclear physics input for modeling the synthesis of heavy elements in stars. The growing precision of stellar spectroscopy and isotopic measurements in presolar SiC grains now demands cross sections with improved accuracy over the full energy range, and [...] Read more.
Neutron capture reactions provide essential nuclear physics input for modeling the synthesis of heavy elements in stars. The growing precision of stellar spectroscopy and isotopic measurements in presolar SiC grains now demands cross sections with improved accuracy over the full energy range, and access to unstable nuclei relevant to slow (s-) process branchings and the intermediate (i-) process. This article reviews recent progress in direct neutron capture measurements, focusing on time-of-flight (TOF) experiments at CERN n_TOF and complementary activation techniques. Substantial advances have been achieved for stable s-only and bottleneck isotopes, significantly improving constraints on s-process models. In parallel, the combination of high instantaneous neutron fluxes and advanced detector systems has facilitated first-time neutron capture measurements on several radioactive branching-point nuclei. Feasibility studies, however, reveal current limitations related to sample availability, background conditions, and restricted energy coverage. In this context, the complementarity between TOF and activation emerges as a central strategy. Future developments, including high-flux facilities and novel inverse kinematics experiments in ion storage rings, are expected to extend the boundaries of neutron capture measurements, overcoming current limitations and helping unlock new frontiers in our understanding of stellar nucleosynthesis. Full article
(This article belongs to the Special Issue Neutron Capture Processes in the Universe)
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16 pages, 760 KB  
Review
Neutron Capture in Evolved Red Giants: A Review
by Maurizio Maria Busso
Galaxies 2026, 14(3), 58; https://doi.org/10.3390/galaxies14030058 - 1 Jun 2026
Viewed by 529
Abstract
This review traces how our understanding of low- and intermediate-mass stars (hereafter LMS and IMS, respectively) evolved in time, in parallel with our knowledge of slow neutron-capture phenomena (the s-process). I shall focus in particular on the main component of this nucleosynthesis [...] Read more.
This review traces how our understanding of low- and intermediate-mass stars (hereafter LMS and IMS, respectively) evolved in time, in parallel with our knowledge of slow neutron-capture phenomena (the s-process). I shall focus in particular on the main component of this nucleosynthesis phenomenon, occurring in the above-mentioned stars close to the end of their lifetimes. They start ascending the Asymptotic Giant Branch (AGB), where both H- and He-shells exist, burning alternatively during the phases most relevant to our discussion: the so-called thermal pulses (hence, the name of TP-AGB stages for the final evolutionary period of these stars). I shall outline how such final stages were discovered to be a crucial source for neutron captures. Finally, I will briefly discuss what observational constraints and nuclear measurements have taught us about the status of our theoretical models in this field of nuclear and stellar physics. Full article
(This article belongs to the Special Issue Neutron Capture Processes in the Universe)
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8 pages, 2143 KB  
Article
Nucleosynthesis of Elements Beyond Fe in C-O Shell Mergers
by Lorenzo Roberti, Agnese Falla and Luca Boccioli
Galaxies 2026, 14(3), 47; https://doi.org/10.3390/galaxies14030047 - 14 May 2026
Viewed by 427
Abstract
Carbon–oxygen (C–O) shell mergers in the final evolutionary stages of massive stars play a critical role in shaping the pre-supernova structure and the resulting nucleosynthesis. In this work, we investigate the impact of such a merger on the production of elements beyond the [...] Read more.
Carbon–oxygen (C–O) shell mergers in the final evolutionary stages of massive stars play a critical role in shaping the pre-supernova structure and the resulting nucleosynthesis. In this work, we investigate the impact of such a merger on the production of elements beyond the Iron peak, focusing on an extremely metal-poor ([Fe/H]=5) rotating 15 M stellar model. The results show that the merger favors the synthesis of weak s-process seeds and light p-nuclei, such as 88Sr, 94Mo, and 98Ru, via photodisintegration of heavier nuclei previously produced by rotational-induced nucleosynthesis. By simulating the subsequent core-collapse supernova explosion with a thermal bomb approach, we demonstrate that these chemical signatures are largely preserved, as the expanded structure of the merged shells significantly modifies the impact of the shock wave. These findings suggest that C–O shell mergers in early-generation stars could provide a primary-like source for intermediate and heavy elements, with important implications for the chemical evolution of the early Universe. Full article
(This article belongs to the Special Issue Neutron Capture Processes in the Universe)
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10 pages, 310 KB  
Article
Constraining Neutron-Capture Nucleosynthesis from Surface Chemical Composition of Chemically Peculiar Stars: The Puzzling Case of HE 1005-1439
by Aruna Goswami, Arthur Choplin, Partha Pratim Goswami, Lionel Siess and Stephane Goriely
Galaxies 2026, 14(3), 37; https://doi.org/10.3390/galaxies14030037 - 23 Apr 2026
Viewed by 728
Abstract
The chemical composition of stellar atmospheres provides a valuable window into the complex processes of stellar nucleosynthesis. Among chemically peculiar cool stars, many objects are the products of mass transfer in binary systems, including most carbon stars, CH stars, and CEMP-s and [...] Read more.
The chemical composition of stellar atmospheres provides a valuable window into the complex processes of stellar nucleosynthesis. Among chemically peculiar cool stars, many objects are the products of mass transfer in binary systems, including most carbon stars, CH stars, and CEMP-s and CEMP-r/s stars. Accurate and precise determinations of heavy-element abundances in these systems serve as powerful tracers of neutron-capture nucleosynthesis operating in the slow (s) and intermediate (i) regimes. Such measurements also place important constraints on binary evolution, mass-transfer mechanisms, the onset of early s-process enrichment, and the astrophysical sites and production pathways associated with the i-process. In this work, we investigate the origin of the extremely metal-poor star HE 1005-1439, which has previously been suggested to exhibit a surface composition enriched by a combination of s- and i-process nucleosynthesis. Using new multi-zone, detailed AGB models for both the s- and i-processes, we find that a mixed i+s scenario provides a plausible explanation for the observed abundance pattern of HE 1005-1439, although a pure i-process AGB model yields an almost equally satisfactory fit. Full article
(This article belongs to the Special Issue Neutron Capture Processes in the Universe)
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8 pages, 326 KB  
Communication
Osmium Abundances in Galactic Halo Stars at Intermediate Metallicities
by Francesca Lucertini and Linda Lombardo
Galaxies 2026, 14(2), 31; https://doi.org/10.3390/galaxies14020031 - 9 Apr 2026
Viewed by 595
Abstract
Osmium is a third-peak neutron-capture element predominantly produced by the rapid (r-) process, and it is a valuable tracer of early Galactic chemical enrichment. However, osmium abundance measurements in Galactic stars remain limited due to observational challenges. We present new osmium abundances for [...] Read more.
Osmium is a third-peak neutron-capture element predominantly produced by the rapid (r-) process, and it is a valuable tracer of early Galactic chemical enrichment. However, osmium abundance measurements in Galactic stars remain limited due to observational challenges. We present new osmium abundances for 23 stars at intermediate metallicities (2.5 [Fe/H] 1.0) within the framework of the MINCE (Measuring at Intermediate Metallicity Neutron-Capture Elements) project. A standard abundance analysis was carried out using one-dimensional LTE model atmospheres and the optical Os I line at 479 nm observed in high-quality UVES spectra. The derived [Os/Fe] ratio exhibits an anticorrelation with [Fe/H], supporting efficient r-process enrichment during the early phases of the Milky Way’s evolution. We also investigated Os abundances across different Galactic components, finding that halo and Gaia–Sausage–Enceladus stars are more Os-rich than thick-disk stars. A comparison between Os and europium abundances supports a common r-process origin for these elements at intermediate metallicities. Full article
(This article belongs to the Special Issue Neutron Capture Processes in the Universe)
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8 pages, 1272 KB  
Communication
First Results of the 64Ni(n,γ) Cross Section Measurement at n_TOF
by Michele Spelta, Gabriele Cescutti, Sergio Cristallo, Francisco García-Infantes, Alice Manna, Alberto Mengoni, Paolo Maria Milazzo, Riccardo Mucciola, Giuseppe Tagliente, Diego Vescovi, Oliver Aberle, Victor Alcayne, Simone Amaducci, Józef Andrzejewski, Victor Babiano, Michael Bacak, Javier Balibrea-Correa, Ana-Paula Bernardes, Eric Berthoumieux, Roland Beyer, Marian Boromiza, Damir Bosnar, Manuel Caamaño, Francisco Calviño, Marco Calviani, Daniel Cano-Ott, Adrià Casanovas, Donato Castelluccio, Francesco Cerutti, Sotirios Chasapoglou, Enrico Chiaveri, Gerardo Claps, Paolo Colombetti, Nicola Colonna, Patrizio Console Camprini, Guillem Cortés, Miguel Cortés-Giraldo, Luigi Cosentino, Sophia Florence Dellmann, Maria Diakaki, Mario Di Castro, Mirco Dietz, César Domingo-Pardo, Rugard Dressler, Emmeric Dupont, Ignacio Durán, Zinovia Eleme, Mamad Eslami, Sylvain Fargier, Beatriz Fernández-Domínguez, Paolo Finocchiaro, Valter Furman, Aman Gandhi, Aleksandra Gawlik-Ramięga, Gianpiero Gervino, Simone Gilardoni, Enrique González-Romero, Styliani Goula, Erich Griesmayer, Carlos Guerrero, Frank Gunsing, Carlo Gustavino, Tanja Heftrich, Jan Heyse, William Hillman, David Jenkins, Erwin Jericha, Arnd Junghans, Yacine Kadi, Kalliopi Kaperoni, Michael Kokkoris, Dominik Koll, Yury Kopatch, Milan Krtička, Nikolaos Kyritsis, Ion Ladarescu, Claudia Lederer-Woods, Jorge Lerendegui-Marco, Giuseppe Lerner, Trinitario Martínez, Alessandro Masi, Cristian Massimi, Pierfrancesco Mastinu, Mario Mastromarco, Emilio-Andrea Maugeri, Annamaria Mazzone, Emilio Mendoza, Veatriki Michalopoulou, Elizabeth Musacchio González, Agatino Musumarra, Alexandru Negret, Nikolas Patronis, José Antonio Pavón, Maria Pellegriti, Pablo Pérez-Maroto, Alberto Pérez de Rada Fiol, Jarosław Perkowski, Cristina Petrone, Luciano Piersanti, Elisa Pirovano, Julio Plaza del Olmo, Dominik Plonka, Stephan Pomp, Ignacio Porras, Javier Praena, José-Manuel Quesada, René Reifarth, Dimitri Rochman, Yuriy Romanets, Annie Rooney, Carlo Rubbia, Adrián Sánchez-Caballero, Marta Sabaté-Gilarte, Daniele Scarpa, Peter Schillebeeckx, Dorothea Schumann, Gavin Smith, Nikolay Sosnin, Maria-Elisso Stamati, Antonella Tamburrino, Ariel Tarifeño-Saldivia, Diego Tarrío, Pablo Torres-Sánchez, Silvia Tosi, Giorgios Tsiledakis, Stanislav Valenta, Pedro Vaz, Gianfranco Vecchio, Vasilis Vlachoudis, Rosa Vlastou, Anton Wallner, Christina Weiss, Philip John Woods, Tobias Wright and Petar Žugecadd Show full author list remove Hide full author list
Galaxies 2026, 14(2), 29; https://doi.org/10.3390/galaxies14020029 - 8 Apr 2026
Viewed by 1212
Abstract
The neutron capture cross section of 64Ni is an important parameter in nuclear astrophysics that is needed to accurately simulate stellar nucleosynthesis and validate stellar models. 64Ni is among the seeds of the s-process and its capture cross section has been [...] Read more.
The neutron capture cross section of 64Ni is an important parameter in nuclear astrophysics that is needed to accurately simulate stellar nucleosynthesis and validate stellar models. 64Ni is among the seeds of the s-process and its capture cross section has been found to have an important effect on the predicted abundances of many nuclei synthesized in Asymptotic Giant Branch (AGB) and massive stars. Despite its relevance, the measurements of the 64Ni(n,γ) available in the literature are scarce and discrepant. For this reason, a new accurate time-of-flight measurement has been performed at the n_TOF facility at CERN, taking advantage of its high instantaneous neutron flux, and using a highly enriched 64Ni sample. The first preliminary results show important discrepancies with respect to the cross sections recommended in the most recent releases of the evaluated nuclear data libraries. In particular, a large resonance reported at 9.52 keV is not observed. As a consequence, a significant reduction in the Maxwellian-Averaged Cross Section (MACS) obtained from evaluated data libraries in the 5–25 keV thermal energy region is expected. Full article
(This article belongs to the Special Issue Neutron Capture Processes in the Universe)
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7 pages, 536 KB  
Communication
Observations of r-Process Enriched Stars
by Terese T. Hansen, Mila Racca, Timothy C. Beers, Rana Ezzeddine, Anna Frebel, Erika M. Holmbeck, Vinicius M. Placco, Ian U. Roederer and Charli M. Sakari
Galaxies 2026, 14(2), 28; https://doi.org/10.3390/galaxies14020028 - 2 Apr 2026
Viewed by 1375
Abstract
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 [...] Read more.
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. Full article
(This article belongs to the Special Issue Neutron Capture Processes in the Universe)
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20 pages, 1083 KB  
Review
Application of Atomic Models to Determine Elemental Abundances in Stars in the Non-LTE Approximation: Neutral Potassium and Copper
by Sergei M. Andrievsky and Sergey A. Korotin
Atoms 2026, 14(3), 16; https://doi.org/10.3390/atoms14030016 - 4 Mar 2026
Viewed by 1032
Abstract
In this paper, we discuss the atomic models developed for the non-local thermodynamic equilibrium (LTE) analysis of the spectra of two odd-Z chemical elements, the little-studied potassium and copper, whose nuclei are often thought to form in Cosmos through different astrophysical processes. The [...] Read more.
In this paper, we discuss the atomic models developed for the non-local thermodynamic equilibrium (LTE) analysis of the spectra of two odd-Z chemical elements, the little-studied potassium and copper, whose nuclei are often thought to form in Cosmos through different astrophysical processes. The K I and Cu I atomic models have been developed and updated over the past decade and applied to determine non-LTE abundances of these elements in the hot and cool dwarfs, giants, and supergiants of different metallicities, from solar to extremely low metallicity. The abundances of potassium and copper in old metal-poor halo stars are of considerable interest because these objects bear the imprints of nucleosynthesis in Type II supernovae and hypernovae in the early Galaxy. The vast majority of the studies of the spectra of these atoms have been based on the assumption of LTE. In some cases, this approach has led to incorrect results, which have sometimes affected our understanding of evolutionary processes in stars and stellar systems. The main objective of this article is to highlight the importance of using the non-LTE stellar abundance data to improve or modify existing theoretical models of cosmic chemical evolution. In particular, significantly different results for the copper abundance in old Galactic stars were obtained compared to LTE data. This finding could inspire specialists working in the field of chemodynamic models to search for realistic pathways for the formation of this element in massive stars. Despite this, since the first non-LTE results on the copper abundance in the oldest Galactic stars, LTE data remained in use for several years. This situation seriously hinders progress in research into some certain aspects of cosmic nucleosynthesis. Full article
(This article belongs to the Special Issue Atomic Processes and Their Role in Astrophysical Phenomena)
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15 pages, 774 KB  
Article
The Impact of Recent LUNA Measurements of NeNa Reactions on 26Al Stellar Nucleosynthesis
by Umberto Battino, Tommaso Gallo, Diego Vescovi, Sergio Cristallo, Andreas Best, Oscar Straniero, Eliana Masha, Erin R. Higgins and Raphael Hirschi
Universe 2026, 12(3), 70; https://doi.org/10.3390/universe12030070 - 2 Mar 2026
Viewed by 1181
Abstract
Recent measurements performed by the LUNA(Laboratory for Underground Nuclear Astrophysics) collaboration between 2019 and 2024 have provided the most precise direct determinations to date of several key reaction rates in the NeNa cycle, specifically the 20Ne(p,γ)21Na [...] Read more.
Recent measurements performed by the LUNA(Laboratory for Underground Nuclear Astrophysics) collaboration between 2019 and 2024 have provided the most precise direct determinations to date of several key reaction rates in the NeNa cycle, specifically the 20Ne(p,γ)21Na and the 22Ne(p,γ)23Na reactions, as well as its bridge to the MgAl cycle, i.e., the 23Na(p,γ)24Mg reaction. Despite their improved accuracy, these updated rates are not yet consistently incorporated into widely used nuclear reaction network compilations. We explore the astrophysical impact of adopting the new LUNA rates by performing nucleosynthesis calculations, focusing on the case of 26Al nucleosynthesis and considering four different stellar environments: low-mass AGB stars, massive stars, very massive stars and core-collapse supernovae. Our results show substantial sensitivity of 26Al production to the revised rates. In the AGB model, the surface 26Al abundance decreases by up to 30%, while in the massive star model, the 26Al abundance in the C-burning shell increases by 51%. In contrast, the impact on both the 26Al yields ejected by very massive stars and on the explosive nucleosynthesis in the supernova model is negligible. These findings have direct implications for galactic chemical evolution, the global budget of 26Al, and theoretical predictions of the 60Fe/26Al ratio, which will be critically tested by forthcoming γ-ray observations from missions such as the Compton Spectrometer and Imager (COSI). Full article
(This article belongs to the Special Issue Advances in Nuclear Astrophysics)
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7 pages, 420 KB  
Communication
Molybdenum Abundances in MINCE Stars
by Linda Lombardo and Francesca Lucertini
Galaxies 2026, 14(2), 17; https://doi.org/10.3390/galaxies14020017 - 28 Feb 2026
Viewed by 953
Abstract
Molybdenum (Mo, Z = 42) is a neutron-capture element with seven stable isotopes that can be produced by different processes. Previous studies have shown a large scatter in molybdenum abundances for metal-poor ([Fe/H] < 1) stars, indicating that multiple nucleosynthetic channels [...] Read more.
Molybdenum (Mo, Z = 42) is a neutron-capture element with seven stable isotopes that can be produced by different processes. Previous studies have shown a large scatter in molybdenum abundances for metal-poor ([Fe/H] < 1) stars, indicating that multiple nucleosynthetic channels are responsible for molybdenum production even at very low metallicity. To understand which different nucleosynthesis processes are involved in the chemical enrichment of this element in the Galaxy, a large sample of precise molybdenum abundance is required. In this study, we present molybdenum abundances of 27 metal-poor stars from the Measuring at Intermediate Metallicity Neutron-Capture Elements project sample. We derived molybdenum abundances using three Mo i lines at 550.6 nm, 557.0 nm, and 603.0 nm, which proved to be reliable for measuring Mo abundances in giant stars with [Fe/H] >2. Our derived [Mo/Fe] abundance ratios show on average slightly higher values (∼0.2 dex) compared to the literature samples. This may be due to an observational bias or to non-local thermodynamic equilibrium effects. We also found that Gaia-Sausage-Enceladus candidate stars have lower [Mo/Fe] than the sample average, while the only Sequoia candidate star has a higher [Mo/Fe] than most sample stars. Full article
(This article belongs to the Special Issue Neutron Capture Processes in the Universe)
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35 pages, 2170 KB  
Review
Probing Supernova Diversity Through High-Cadence Optical Observations
by Kuntal Misra, Bhavya Ailawadhi, Raya Dastidar, Monalisa Dubey, Naveen Dukiya, Anjasha Gangopadhyay, Divyanshu Janghel, Kumar Pranshu and Mridweeka Singh
Universe 2025, 11(11), 361; https://doi.org/10.3390/universe11110361 - 31 Oct 2025
Viewed by 1023
Abstract
Supernovae (SNe) are among the most energetic and transient events in the universe, offering crucial insights into stellar evolution, nucleosynthesis, and cosmic expansion. Optical observations have historically played a central role in the discovery, classification, and physical interpretation of SNe. In this review, [...] Read more.
Supernovae (SNe) are among the most energetic and transient events in the universe, offering crucial insights into stellar evolution, nucleosynthesis, and cosmic expansion. Optical observations have historically played a central role in the discovery, classification, and physical interpretation of SNe. In this review, we summarize recent progress in the optical study of SNe, with a focus on advancements in time-domain surveys and photometric and spectroscopic follow-up strategies. High-cadence optical monitoring is pivotal in capturing the diverse behaviors of SNe, from early-time emission to late-phase decline. Leveraging data from ARIES telescopes and national/international collaborations, we systematically investigate various SN types, including Type Iax, IIP/L, IIb, IIn/Ibn and Ib/c events. Our analysis includes light curve evolution and spectral diagnostics, providing insights into early emission signatures (e.g., shock breakout), progenitor systems, explosion mechanisms, and circumstellar medium (CSM) interactions. Through detailed case studies, we demonstrate the importance of both early-time and nebular-phase observations in constraining progenitor and CSM properties. This comprehensive approach underscores the importance of coordinated global efforts in time-domain astronomy to deepen our understanding of SN diversity. We conclude by discussing the challenges and opportunities for future optical studies in the era of wide-field observatories such as the Vera C. Rubin Observatory (hereafter Rubin), with an emphasis on detection strategies, automation, and rapid-response capabilities. Full article
(This article belongs to the Special Issue A Multiwavelength View of Supernovae)
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11 pages, 758 KB  
Article
Measurement of the 33S(n,α)30Si Thermal Cross-Section with Slow Neutrons at ILL
by Javier Praena, Begoña Fernández, Miguel Macías, Ignacio Porras, María Pedrosa-Rivera, Hanna Koivunoro, Marta Sabaté-Gilarte and Fernando Arias de Saavedra
Quantum Beam Sci. 2025, 9(3), 27; https://doi.org/10.3390/qubs9030027 - 22 Sep 2025
Viewed by 1569
Abstract
This work is focused on an accurate experimental determination of the thermal 33S(n,α)30Si cross-section. This cross-section is a critical parameter for the potential use of 33S as a cooperative target in boron neutron capture therapy [...] Read more.
This work is focused on an accurate experimental determination of the thermal 33S(n,α)30Si cross-section. This cross-section is a critical parameter for the potential use of 33S as a cooperative target in boron neutron capture therapy or to understand its role in the stellar nucleosynthesis of 36S. At present, there are large discrepancies in this experimental value; therefore, in this work we measured it relative to the 10B(n,α)7Li standard cross-section at the high flux reactor of the Institut Laue-Langevin. The experimental setup was based on a double-sided silicon strip detector. Two 33S samples were used. One 10B sample was used as reference. Particular attention was taken to the characterization of the mass thickness of the samples before and after the experiment because of the high volatility of 33S. Such work was already published in a dedicated paper. A cross-check of the 10B sample was carried out with the neutron flux monitor at the n_TOF-CERN facility. The obtained cross-section of (280 ± 33) mb is significantly higher than the existing data. Full article
(This article belongs to the Special Issue Quantum Beam Science: Feature Papers 2025)
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26 pages, 2204 KB  
Review
Recent Advances in Understanding R-Process Nucleosynthesis in Metal-Poor Stars and Stellar Systems
by Avrajit Bandyopadhyay and Timothy C. Beers
Universe 2025, 11(7), 229; https://doi.org/10.3390/universe11070229 - 11 Jul 2025
Cited by 4 | Viewed by 6858
Abstract
The rapid neutron-capture process (r-process) is responsible for the creation of roughly half of the elements heavier than iron, including precious metals like silver, gold, and platinum, as well as radioactive elements such as thorium and uranium. Despite its importance, the [...] Read more.
The rapid neutron-capture process (r-process) is responsible for the creation of roughly half of the elements heavier than iron, including precious metals like silver, gold, and platinum, as well as radioactive elements such as thorium and uranium. Despite its importance, the nature of the astrophysical sites where the r-process occurs, and the detailed mechanisms of its formation, remain elusive. The key to resolving these mysteries lies in the study of chemical signatures preserved in ancient, metal-poor stars. These stars, which formed in the early Universe, retain the chemical fingerprints of early nucleosynthetic events and offer a unique opportunity to trace the origins of r-process elements in the early Galaxy. In this review, we explore the state-of-the-art understanding of r-process nucleosynthesis, focusing on the sites, progenitors, and formation mechanisms. We discuss the role of potential astrophysical sites such as neutron star mergers, core-collapse supernovae, magneto-rotational supernovae, and collapsars, that can play a key role in producing the heavy elements. We also highlight the importance of studying these signatures through high-resolution spectroscopic surveys, stellar archaeology, and multi-messenger astronomy. Recent advancements, such as the gravitational wave event GW170817 and detection of the r-process in the ejecta of its associated kilonovae, have established neutron star mergers as one of the confirmed sites. However, questions remain regarding whether they are the only sites that could have contributed in early epochs or if additional sources are needed to explain the signatures of r-process found in the oldest stars. Additionally, there are strong indications pointing towards additional sources of r-process-rich nuclei in the context of Galactic evolutionary timescales. These are several of the outstanding questions that led to the formation of collaborative efforts such as the R-Process Alliance, which aims to consolidate observational data, modeling techniques, and theoretical frameworks to derive better constraints on deciphering the astrophysical sites and timescales of r-process enrichment in the Galaxy. This review summarizes what has been learned so far, the challenges that remain, and the exciting prospects for future discoveries. The increasing synergy between observational facilities, computational models, and large-scale surveys is poised to transform our understanding of r-process nucleosynthesis in the coming years. Full article
(This article belongs to the Special Issue Advances in Nuclear Astrophysics)
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29 pages, 22860 KB  
Article
Laboratory Magnetoplasmas as Stellar-like Environment for 7Be β-Decay Investigations Within the PANDORA Project
by Eugenia Naselli, Bharat Mishra, Angelo Pidatella, Alessio Galatà, Giorgio S. Mauro, Domenico Santonocito, Giuseppe Torrisi and David Mascali
Universe 2025, 11(6), 195; https://doi.org/10.3390/universe11060195 - 18 Jun 2025
Cited by 1 | Viewed by 1226
Abstract
Laboratory magnetoplasmas can become an intriguing experimental environment for fundamental studies relevant to nuclear astrophysics processes. Theoretical predictions indicate that the ionization state of isotopes within the plasma can significantly alter their lifetimes, potentially due to nuclear and atomic mechanisms such as bound-state [...] Read more.
Laboratory magnetoplasmas can become an intriguing experimental environment for fundamental studies relevant to nuclear astrophysics processes. Theoretical predictions indicate that the ionization state of isotopes within the plasma can significantly alter their lifetimes, potentially due to nuclear and atomic mechanisms such as bound-state β-decay. However, only limited experimental evidence on this phenomenon has been collected. PANDORA (Plasmas for Astrophysics, Nuclear Decay Observations, and Radiation for Archaeometry) is a novel facility which proposes to investigate nuclear decays in high-energy-density plasmas mimicking some properties of stellar nucleosynthesis sites (Big Bang Nucleosynthesis, s-process nucleosynthesis, role of CosmoChronometers, etc.). This paper focuses on the case of 7Be electron capture (EC) decay into 7Li, since its in-plasma decay rate has garnered considerable attention, particularly concerning the unresolved Cosmological Lithium Problem and solar neutrino physics. Numerical simulations were conducted to assess the feasibility of this possible lifetime measurement in the plasma of PANDORA. Both the ionization and atomic excitation of the 7Be isotopes in a He buffer Electron Cyclotron Resonance (ECR) plasma within PANDORA were explored via numerical modelling in a kind of “virtual experiment” providing the expected in-plasma EC decay rate. Since the decay of 7Be provides γ-rays at 477.6 keV from the 7Li excited state, Monte-Carlo GEANT4 simulations were performed to determine the γ-detection efficiency by the HPGe detectors array of the PANDORA setup. Finally, the sensitivity of the measurement was evaluated through a virtual experimental run, starting from the simulated plasma-dependent γ-rate maps. These results indicate that laboratory ECR plasmas in compact traps provide suitable environments for β-decay studies of 7Be, with the estimated duration of experimental runs required to reach 3σ significance level being few hours, which prospectively makes PANDORA a powerful tool to investigate the decay rate under different thermodynamic conditions and related charge state distributions. Full article
(This article belongs to the Special Issue Recent Outcomes and Future Challenges in Nuclear Astrophysics)
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9 pages, 286 KB  
Opinion
Challenges in Atomic Spectroscopy of Low-Ionisation-Stage Heavy Elements for Astrophysics
by Milan Ding
Atoms 2025, 13(4), 35; https://doi.org/10.3390/atoms13040035 - 16 Apr 2025
Viewed by 1344
Abstract
Accurate knowledge of the fine structure of low-ionisation-stage heavy elements is crucial for plasma modelling in stellar astronomy, galactic evolution studies, and nucleosynthesis investigations. The experimental determination of atomic energy levels and transitions in these elements is essential for the meaningful interpretation of [...] Read more.
Accurate knowledge of the fine structure of low-ionisation-stage heavy elements is crucial for plasma modelling in stellar astronomy, galactic evolution studies, and nucleosynthesis investigations. The experimental determination of atomic energy levels and transitions in these elements is essential for the meaningful interpretation of high-resolution astrophysical spectra obtained with modern telescopes, as theoretical calculations of transition wavelengths and strengths often lack sufficient accuracy. This article provides a brief review of the major challenges in empirical atomic structure investigations of the low-ionisation open d- and f-subshell elements, which have the most complex atomic spectra. Full article
(This article belongs to the Special Issue Atomic and Molecular Data and Their Applications: ICAMDATA 2024)
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