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Sulfur Molecules in Space by X-rays: A Computational StudyX-ray astronomy lacks high resolution spectra of interstellar dust analogues and molecules, severely hampering interstellar medium studies based on upcoming X-ray missions. Various theoretical approaches may be used to address this problem, but they must first be shown to reproduce reliable spectra compared to the experiment. In this work, we calculate the sulfur Kedge X-ray absorption spectra of H2S, SO2, and OCS, whose spectra are already known from X-ray experiments and predict the X-ray spectrum of CS, which as far as we are aware has not been measured, thereby hampering its detection by X-ray telescopes. We chose these four molecules as the astrochemistry of sulfur is an unsolved problem and as the four molecules are already known to exist in space. We consider three types of methods for modeling the X-ray spectra: more accurate calculations with the algebraic-diagrammatic construction (ADC) and the CC2, CCSD, and CC3coupled cluster (CC) approaches as well as more affordable ones with transition potential density functional theory (TP-DFT). A comparison of our computational results to previously reported experimental spectra shows that the core−valence separation (CVS)approaches CVS-ADC(2)-x and CVS-CC3 generally yield a good qualitative level of agreement with the experiment, suggesting that they can be used for interpreting measured spectra, while the TP-DFT method is not reliable for these molecules. However, quantitative agreement with the experiment is still outside the reach of the computational methods studied in this work.
Document ID
20210015775
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Goranka Bilalbegovic ORCID
(University of Zegreb)
Aleksandar Maksimovic
(Rudjer Boskovic Institute Zagreb, Croatia)
Lynne A Valencic
(Johns Hopkins University Baltimore, Maryland, United States)
Susi Lehtola ORCID
(University of Helsinki Helsinki, Finland)
Date Acquired
May 18, 2021
Publication Date
February 24, 2021
Publication Information
Publication: ACS Earth and Space Chemistry
Publisher: ACS Publications
Volume: 5
Issue: 3
Issue Publication Date: March 18, 2021
e-ISSN: 2472-3452
URL: https://pubs.acs.org/doi/10.1021/acsearthspacechem.0c00238?ref=pdf
Subject Category
Astronomy
Funding Number(s)
CONTRACT_GRANT: 80NSSC19M0005
CONTRACT_GRANT: IP-2014-09-8656
PROJECT: 311149
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
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