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Lund University

Physics: Computational Atomic Physics with Applications in Astrophysics

<p>On this course, you will explore the fundamental processes of atomic physics and see how researchers use calculations to understand how atoms work. You will work with methods from modern research and apply them in practice in your own project.</p><p>The course provides a practical introduction to computational at…

  • Higher education
  • Information unavailable
  • 8 June 2026
  • Lund
  • Information unavailable
  • 100 %

Overview

<p>On this course, you will explore the fundamental processes of atomic physics and see how researchers use calculations to understand how atoms work. You will work with methods from modern research and apply them in practice in your own project.</p><p>The course provides a practical introduction to computational atomic physics and shows how Computational methods are used to describe the structure and behaviour of atoms. You will learn the basics of theoretical atomic physics and how atomic systems are modelled using methods from modern research. We cover atomic structure, electron correlation, relativistic effects, excitation and ionisation, and how these processes are affected by electromagnetic radiation and electron collisions.</p><p>You will also work with key computational methods such as Hartree and Dirac Fock methods, configuration interaction, multi-configuration methods, Z-dependent perturbation theory and R matrix methods. The course also shows how atomic data is used in astrophysics, including in basic plasma modelling.</p><p>The course begins with theory and computer exercises and ends with a project in which you use the methods from the course to solve a real-world problem in atomic physics. The course can be taken as a stand-alone course or as part of a programme in physics or astrophysics.</p>

Admission scores

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Entry requirements

Admission to the course requires 120 credits scientific studies in which 75 credits in physics and 45 credits in mathematics is included, or a Degree of Bachelor in physics - in both cases including knowledge equivalent to FYSB24 Atomic and Molecular Physics, 7.5 credits, FYSB22 Basic quantum mechanics, 7.5 credits, and NUMA01 Beräkningsprogrammering with Python, 7.5 credits, and English 6/B.

The text is reproduced from the Susa source. Antagningsdata does not map GY11 and GY25 or assess personal eligibility.

Source, measure and data quality
Source
Skolverket Susa-navet
Period
2026-06-08
Measure
Entry-requirement text reproduced from the published Susa data; no personal eligibility assessment is made.
Population
Education offering e.uoh.lu.fyst87.s1052.20261
Last checked
2026-09-23T10:38:26.989764+00:00
Limitation
Antagningsdata does not map GY11 and GY25. General and specific conditions are not separated without structured source data.

Programme content

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Study structure

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Application and important dates

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  2. Programme or course ends

Salary and salary distribution

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Common occupations after graduation

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Students

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Geographical background

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Previous upper-secondary schools and programmes

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Completion and outcomes

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About the provider

Lund University

Provider for the published education offering.

Sources and data quality

Education facts for the selected offering come from Skolverket Susa-navet.

Retrieved . Published . Times are shown in Swedish local time.

Source identity and publication version
Publication version
8e217193-f5fa-4778-b085-a4521fd03e8d
Education identity in the source
i.uoh.lu.fyst87.s1052.20261
Offering identity in the source
e.uoh.lu.fyst87.s1052.20261
Education-form source code
HS
Education code in the source
FYST87
Change time according to the source
2026-03-25T09:28:57

The provider, education and education offering are separate identities. Application information should be checked on the official website. Supplementary statistics have not been obtained from this source.