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An ultra-massive white dwarf with a mixed hydrogen-carbon atmosphere as a likely merger remnant

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arxiv 2003.00028 v1 pith:HQPWSKVZ submitted 2020-02-28 astro-ph.SR

classification astro-ph.SR
keywords hydrogenwhitecarbonheliumdwarfsenvelopeoxygenstellar
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abstract

White dwarfs are dense, cooling stellar embers consisting mostly of carbon and oxygen, or oxygen and neon (with a few percent carbon) at higher initial stellar masses. These stellar cores are enveloped by a shell of helium which in turn is usually surrounded by a layer of hydrogen, generally prohibiting direct observation of the interior composition. However, carbon is observed at the surface of a sizeable fraction of white dwarfs, sometimes with traces of oxygen, and it is thought to be dredged-up from the core by a deep helium convection zone. In these objects only traces of hydrogen are found as large masses of hydrogen are predicted to inhibit hydrogen/helium convective mixing within the envelope. We report the identification of WDJ055134.612+413531.09, an ultra-massive (1.14 $M_\odot$) white dwarf with a unique hydrogen/carbon mixed atmosphere (C/H=0.15 in number ratio). Our analysis of the envelope and interior indicates that the total hydrogen and helium mass fractions must be several orders of magnitude lower than predictions of single star evolution: less than $10^{-9.5}$ and $10^{-7.0}$, respectively. Due to the fast kinematics ($129\pm5$ km/s relative to the local standard of rest), large mass, and peculiar envelope composition, we argue that WDJ0551+4135 is consistent with formation from the merger of two white dwarfs in a tight binary system.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. White dwarfs within 13 pc: Insights from ultraviolet spectroscopy

    astro-ph.SR 2026-07 conditional novelty 6.0 of 10

    UV spectroscopy of the 44 nearest white dwarfs reveals a 2–6% temperature discrepancy between UV and optical model fits, six UV-only metal detections, and a 30% planetary debris accretion rate.

  2. Observing bright pulsating white dwarfs with PLATO: A new window into the late stages of stellar evolution

    astro-ph.SR 2025-11 conditional novelty 6.0 of 10

    PLATO should detect white-dwarf pulsation modes down to about 0.1 milli-magnitudes for bright targets, and the LOPS2 field contains 159 high-priority white-dwarf candidates for such measurements.

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