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On the cosmic origins of copper, silver, and gold: atomic structure and 3D/non-LTE abundances
Uppsala University, Disciplinary Domain of Science and Technology, Physics, Department of Physics and Astronomy, Theoretical Astrophysics.ORCID iD: 0009-0006-5653-7255
2026 (English)Doctoral thesis, comprehensive summary (Other academic)
Description
Abstract [en]

The cosmic origin of elements heavier than iron remains one of the central open questions in astrophysics. These elements are produced through neutron-capture processes in a range of astrophysical sites. Disentangling their relative contributions and Galactic evolution relies on accurate stellar abundances.  However, this often requires modelling beyond the commonly used assumptions of one-dimensional (1D) atmospheres and local thermodynamic equilibrium (LTE). Non-LTE modelling, in turn, depends on comprehensive and reliable radiative and collisional atomic data, which are frequently incomplete or uncertain for heavy elements. This thesis aims to construct accurate 3D/non-LTE models for heavy elements and to demonstrate how improvements in atomic data propagate into astrophysical conclusions.

A key requirement for non-LTE modelling is accurate energy levels and oscillator strengths, for which we often rely on theoretical atomic structure calculations. For atoms with complex structures, these calculations must balance accuracy against computational feasibility. In the first paper, we propose a method to represent the atomic wavefunction accurately while keeping it compact within small-scale atomic structure calculations of neutral gold. We show that this approach improves agreement with experimental energy levels and transition probabilities.

Another major uncertainty in non-LTE modelling is the treatment of inelastic collisions with neutral hydrogen. In the second paper, we compute new hydrogen-collision rate coefficients for copper using physically motivated methods. With these updated rates, we derive 1D non-LTE Cu abundances for a large sample of dwarfs and giants spanning a wide metallicity range. The new collision data resolve the discrepancy between dwarfs and giants at low metallicity and reduce the line-to-line scatter. The revised non-LTE copper trends provide new insight into the nucleosynthetic origin and enrichment history of copper, with implications for the hierarchical build-up of the Milky Way.

In the third paper, we present the first 3D non-LTE analysis of neutral silver, a tracer of the weak r-process. Using the Sun as a benchmark, we test the silver model atom and quantify 3D and non-LTE effects. We carefully curate radiative and collisional data for silver, including newly computed oscillator strengths and inelastic hydrogen-collision rates. We revise the solar photospheric silver abundance and find it to be 0.27 dex higher in 3D non-LTE than the previously adopted 3D LTE value. This correction resolves the earlier discrepancy with the meteoritic abundance using fully ab initio 3D non-LTE modelling, without empirical calibration, supporting the confidence in our models.

Place, publisher, year, edition, pages
Uppsala: Acta Universitatis Upsaliensis, 2026. , p. 73
Series
Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Science and Technology, ISSN 1651-6214 ; 2648
Keywords [en]
Stellar spectroscopy, atomic processes, Sun, Galaxy
National Category
Astronomy, Astrophysics and Cosmology
Research subject
Physics with specialization in Astrophysics
Identifiers
URN: urn:nbn:se:uu:diva-581204ISBN: 978-91-513-2770-9 (print)OAI: oai:DiVA.org:uu-581204DiVA, id: diva2:2043727
Public defence
2026-04-28, Sonja Lyttkens (101121), Ångströmlaboratoriet, Lägerhyddsvägen 1, Uppsala, 13:15 (English)
Opponent
Supervisors
Available from: 2026-04-02 Created: 2026-03-05 Last updated: 2026-04-02
List of papers
1. Targeted optimization in small-scale atomic structure calculations: application to Au I
Open this publication in new window or tab >>Targeted optimization in small-scale atomic structure calculations: application to Au I
2024 (English)In: Journal of Physics B: Atomic, Molecular and Optical Physics, ISSN 0953-4075, E-ISSN 1361-6455, Vol. 57, no 5, article id 055003Article in journal (Refereed) Published
Abstract [en]

The lack of reliable atomic data can be a severe limitation in astrophysical modelling, in particular of events such as kilonovae that require information on all neutron-capture elements across a wide range of ionization stages. Notably, the presence of non-orthonormalities between electron orbitals representing configurations that are close in energy can introduce significant inaccuracies in computed energies and transition probabilities. Here, we propose an explicit targeted optimization (TO) method that can effectively circumvent this concern while retaining an orthonormal orbital basis set. We illustrate this method within the framework of small-scale atomic structure models of Au I, using the Grasp2018 multiconfigurational Dirac-Hartree-Fock atomic structure code. By comparing to conventional optimization schemes we show how a TO approach improves the energy level positioning and ordering. TO also leads to better agreement with experimental data for the strongest E1 transitions. This illustrates how small-scale models can be significantly improved with minor computational costs if orbital non-orthonormalities are considered carefully. These results should prove useful to multi-element atomic structure calculations in, for example, astrophysical opacity applications involving neutron-capture elements.

Place, publisher, year, edition, pages
Institute of Physics Publishing (IOPP), 2024
Keywords
atomic structure, atomic data, MCDHF calculations, numerical methods
National Category
Atom and Molecular Physics and Optics
Identifiers
urn:nbn:se:uu:diva-528187 (URN)10.1088/1361-6455/ad2b71 (DOI)001178074200001 ()
Funder
Swedish Research Council, 2020-05467Swedish Research Council, 2020-03940Swedish Research Council
Available from: 2024-05-16 Created: 2024-05-16 Last updated: 2026-03-05Bibliographically approved
2. Revisiting inelastic Cu + H collisions and the non-LTE Galactic evolution of copper
Open this publication in new window or tab >>Revisiting inelastic Cu + H collisions and the non-LTE Galactic evolution of copper
Show others...
2025 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 696, article id A210Article in journal (Refereed) Published
Abstract [en]

The Galactic evolution of copper remains poorly understood, partly due to the strong departures from local thermodynamic equilibrium (LTE) affecting Cu I lines. A key source of uncertainty in non-LTE modelling is the treatment of inelastic Cu + H collisions. We present new rate coefficients based on a combined asymptotic LCAO (linear combination of atomic orbitals) and free electron model approach, which show significant differences from previous calculations. Applying these updated rates to non-LTE stellar modelling, we find reduced line-to-line scatter and improved consistency between metal-poor dwarfs and giants. Our non-LTE analysis reveals a strong upturn in the [Cu/Fe] trend towards lower [Fe/H] < -1.7. We show that this may reflect the interplay between external enrichment of Cu-rich material of the Milky Way halo at low metallicities, and metallicity-dependent Cu yields from rapidly rotating massive stars. This highlights the unique diagnostic potential of accurate Cu abundances for understanding both stellar and Galactic evolution.

Place, publisher, year, edition, pages
EDP Sciences, 2025
Keywords
atomic processes, line: formation, radiative transfer, stars: abundances, galaxy: abundances
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:uu:diva-556616 (URN)10.1051/0004-6361/202554251 (DOI)001476794000018 ()
Funder
Swedish Research Council, VR 2020-03940Swedish Research Council, VR 2020-03404Swedish Research Council, 2022-06725EU, European Research Council, 852977Knut and Alice Wallenberg FoundationThe Crafoord Foundation, CR 2024-0015
Available from: 2025-05-15 Created: 2025-05-15 Last updated: 2026-03-05Bibliographically approved
3. Ag I model atom and the 3D non-LTE solar silver abundance
Open this publication in new window or tab >>Ag I model atom and the 3D non-LTE solar silver abundance
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2026 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 711, article id 155Article in journal (Refereed) Published
Abstract [en]

Silver is an important light neutron-capture element whose stellar abundances can help constrain the origin of the weak r-process. The Sun is an important reference point for such studies; moreover, being a moderately volatile element in CI chondrites, the solar silver abundance is interesting as a diagnostic for the debated Sun-CI abundance versus condensation temperature trend. These studies require accurate silver abundances that go beyond the commonly used assumptions of one-dimensional (1D) atmospheres and local thermodynamic equilibrium (LTE); however, no consistent 3D non-LTE analysis of silver has been available to date. We present a new Ag I model atom built from carefully curated radiative and collisional data, including newly computed oscillator strengths using an ab initio multi-configurational Hartree-Fock method and inelastic hydrogen collision rates based on a combined asymptotic and free-electron-model approach. We assessed modelling uncertainties via targeted sensitivity tests, finding the results to be most sensitive to the hydrogen-collision data. Applying the model to the solar Ag I 328 and 338 nm resonance lines, we find severe positive-abundance corrections from coupled 3D and non-LTE effects. Using revised equivalent-width measurements, we derive a recommended solar 3D non-LTE silver abundance of log εAg = 1.15 ± 0.08. This is an increase of 0.19dex relative to the current reference value. Our ab initio model significantly reduces the discrepancy with the meteoritic value from 0.25 to 0.06 dex; moreover, this residual offset is consistent with what was recently reported for other moderately volatile elements. The Sun provides the benchmark test for the first silver non-LTE model atom presented here. In subsequent work, this model will be applied to determine 3D non-LTE silver abundances in metal-poor dwarfs and giants, enabling improved constraints on Galactic chemical evolution and weak r-process nucleosynthesis.

Place, publisher, year, edition, pages
EDP Sciences, 2026
Keywords
atomic processes, line: formation, radiative transfer, Sun: abundances, Sun: photosphere
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:uu:diva-581202 (URN)10.1051/0004-6361/202659578 (DOI)001824145000001 ()2-s2.0-105045222210 (Scopus ID)
Available from: 2026-03-03 Created: 2026-03-03 Last updated: 2026-07-31Bibliographically approved

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