Murat Uzundag, Alejandro H. Córsico, Nicholas Jannsen, Mukremin Kilic, Pierre Bergeron, Leandro G. Althaus, J. J. Hermes, Ingrid Pelisoli, Keaton J. Bell, Francisco C. De Gerónimo, Leila M. Calcaferro, Zsófia Bognár, Valérie Van Grootel, María E. Camisassa, Paulina Sowicka, Steven D. Kawaler, S. O. Kepler, Roberto Silvotti, Marcelo M. Miller Bertolami, Margarida Cunha
{"title":"Observing bright pulsating white dwarfs with PLATO: A new window into the late stages of stellar evolution","authors":"Murat Uzundag, Alejandro H. Córsico, Nicholas Jannsen, Mukremin Kilic, Pierre Bergeron, Leandro G. Althaus, J. J. Hermes, Ingrid Pelisoli, Keaton J. Bell, Francisco C. De Gerónimo, Leila M. Calcaferro, Zsófia Bognár, Valérie Van Grootel, María E. Camisassa, Paulina Sowicka, Steven D. Kawaler, S. O. Kepler, Roberto Silvotti, Marcelo M. Miller Bertolami, Margarida Cunha","doi":"10.1007/s10686-026-10060-0","DOIUrl":null,"url":null,"abstract":"<div><p>We present the scientific case for exploiting the capabilities of the PLATO mission to study bright pulsating white dwarfs across a wide spectral range, including hydrogen-deficient types (GW Vir and DBV stars) and hydrogen-rich classes (classical DAVs, pulsating extremely low-mass DA white dwarfs, and ultra-massive DA white dwarfs). PLATO’s exceptional photometric precision, long-duration continuous monitoring, and extensive sky coverage promise transformative advances in white dwarf asteroseismology. Our key objectives include probing the internal structure and chemical stratification of white dwarfs, detecting secular changes in pulsation modes over extended timescales, and discovering rare or previously unknown classes of pulsators. To assess feasibility, we constructed a sample of 650 white dwarf candidates (<span>\\(G \\le 17\\)</span>) identified within PLATO’s Southern LOPS2 field using the PLATO complementary science catalogue combined with <i>Gaia</i> DR3, and derived atmospheric parameters through photometric modeling. This sample comprises 118 DA white dwarfs (including 23 ZZ Ceti candidates), and 41 non-DAs (including 35 DBV candidates). Simulated observations with <span>PlatoSim</span> demonstrate that PLATO will detect white dwarf pulsation modes with amplitudes as low as <span>\\(\\sim \\)</span>0.1 mma, depending on stellar magnitude, observation duration, pixel location, and the number of contributing cameras. We provide detailed detection limits and visibility forecasts for known pulsators across a representative range of these parameters. Furthermore, we emphasize strong synergies with <i>Gaia</i> astrometry, TESS photometry, and targeted spectroscopic campaigns, which together will enable robust mode identification and detailed stellar modeling. Collectively, these efforts will unlock unprecedented insights into white dwarf origins, evolution and internal physics, and the fate of their planetary systems.</p></div>","PeriodicalId":551,"journal":{"name":"Experimental Astronomy","volume":"61 3","pages":""},"PeriodicalIF":2.9000,"publicationDate":"2026-06-12","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Experimental Astronomy","FirstCategoryId":"101","ListUrlMain":"https://link.springer.com/article/10.1007/s10686-026-10060-0","RegionNum":3,"RegionCategory":"物理与天体物理","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q2","JCRName":"ASTRONOMY & ASTROPHYSICS","Score":null,"Total":0}
引用次数: 0
Abstract
We present the scientific case for exploiting the capabilities of the PLATO mission to study bright pulsating white dwarfs across a wide spectral range, including hydrogen-deficient types (GW Vir and DBV stars) and hydrogen-rich classes (classical DAVs, pulsating extremely low-mass DA white dwarfs, and ultra-massive DA white dwarfs). PLATO’s exceptional photometric precision, long-duration continuous monitoring, and extensive sky coverage promise transformative advances in white dwarf asteroseismology. Our key objectives include probing the internal structure and chemical stratification of white dwarfs, detecting secular changes in pulsation modes over extended timescales, and discovering rare or previously unknown classes of pulsators. To assess feasibility, we constructed a sample of 650 white dwarf candidates (\(G \le 17\)) identified within PLATO’s Southern LOPS2 field using the PLATO complementary science catalogue combined with Gaia DR3, and derived atmospheric parameters through photometric modeling. This sample comprises 118 DA white dwarfs (including 23 ZZ Ceti candidates), and 41 non-DAs (including 35 DBV candidates). Simulated observations with PlatoSim demonstrate that PLATO will detect white dwarf pulsation modes with amplitudes as low as \(\sim \)0.1 mma, depending on stellar magnitude, observation duration, pixel location, and the number of contributing cameras. We provide detailed detection limits and visibility forecasts for known pulsators across a representative range of these parameters. Furthermore, we emphasize strong synergies with Gaia astrometry, TESS photometry, and targeted spectroscopic campaigns, which together will enable robust mode identification and detailed stellar modeling. Collectively, these efforts will unlock unprecedented insights into white dwarf origins, evolution and internal physics, and the fate of their planetary systems.
期刊介绍:
Many new instruments for observing astronomical objects at a variety of wavelengths have been and are continually being developed. Furthermore, a vast amount of effort is being put into the development of new techniques for data analysis in order to cope with great streams of data collected by these instruments.
Experimental Astronomy acts as a medium for the publication of papers of contemporary scientific interest on astrophysical instrumentation and methods necessary for the conduct of astronomy at all wavelength fields.
Experimental Astronomy publishes full-length articles, research letters and reviews on developments in detection techniques, instruments, and data analysis and image processing techniques. Occasional special issues are published, giving an in-depth presentation of the instrumentation and/or analysis connected with specific projects, such as satellite experiments or ground-based telescopes, or of specialized techniques.