A1 Refereed original research article in a scientific journal
ASASSN-14dx: a cataclysmic variable harbouring a massive pulsating white dwarf
Authors: Hakala, Pasi; Pelisoli, Ingrid; Gänsicke, Boris T.; Rodríguez-Gil, Pablo; Marsh, Thomas R.; Breedt, Elmé; Thorstensen, John R.; Pala, Anna F.
Publisher: Oxford University Press
Publishing place: OXFORD
Publication year: 2025
Journal: Monthly Notices of the Royal Astronomical Society
Journal name in source: MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
Journal acronym: MON NOT R ASTRON SOC
Volume: 540
Issue: 1
First page : 838
Last page: 850
Number of pages: 13
ISSN: 0035-8711
eISSN: 1365-2966
DOI: https://doi.org/10.1093/mnras/staf602
Web address : https://academic.oup.com/mnras/article/540/1/838/8111628
Self-archived copy’s web address: https://research.utu.fi/converis/portal/detail/Publication/498697203
We present the results of our study of ASASSN-14dx, a previously known but poorly characterized cataclysmic variable (CV). The source was observed as part of an ongoing high-time-resolution photometric survey of CVs, which revealed that, in addition to the known 82.8-min orbital period, it also exhibits other transient periods, the strongest of which around 4 and 14 min. Here, we report our findings resulting from a multifaceted follow-up programme consisting of optical spectroscopy, spectropolarimetry, imaging polarimetry, and multicolour fast photometry. We find that the source displays complex optical variability, which is best explained by the presence of a massive white dwarf exhibiting non-radial pulsations. An intermediate polar-like scenario involving a spinning magnetic white dwarf can be ruled out based on the detected changes in the observed periods. Based on our optical spectroscopy, we can constrain the mass and effective temperature of the white dwarf to be similar to 1.1 M☉ and 16 100 K, respectively. The overall intrinsic flux level of the source is unusually high, suggesting that there remains significant residual emission from the accretion disc and/or the white dwarf even ten years after the 2014 outburst. Finally, we cannot detect any spectroscopic signatures from the donor star, making ASASSN-14dx a possible period bouncer system evolving towards a longer orbital period.
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Funding information in the publication:
IP acknowledges support from a Royal Society University Research Fellowship (URF\R1\231496). This research received funding from the European Research Council under the European Union’s Horizon 2020 research and innovation programme number 101020057 (JTW, BTG, SS). PR-G acknowledges support by the Spanish Ministry of Science via the Plan de Generación de Conocimiento project PID2021–124879NB–I00.