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The precise astrometric measurements of the Gaia Data Release 2 have opened the door to detailed tests of the predictions of white dwarf cooling models. Significant discrepancies between theory and observations have been identified, the…

Solar and Stellar Astrophysics · Physics 2021-04-21 Simon Blouin , Jerome Daligault , Didier Saumon

Once carbon--oxygen white dwarfs cool sufficiently, they crystallize from the inside out. If the white dwarf is rich enough in ${}^{22}\mathrm{Ne}$, these crystallized solids are buoyant and rapidly rise, efficiently liberating potential…

Solar and Stellar Astrophysics · Physics 2026-01-05 Nicholas Z. Rui , Jim Fuller

After carbon and oxygen, $^{22}$Ne is the most abundant element in white dwarf interiors. As C/O white dwarfs (WDs) crystallize, they are predicted to go through a distillation process in the central layers if they have a sufficiently high…

Solar and Stellar Astrophysics · Physics 2025-09-04 Manuel Barrientos , Mukremin Kilic , Simon Blouin , Michael R. Hayden , Sanjib Sharma , Matthew J. Green

Cooling white dwarfs (WDs) can yield accurate ages when theoretical cooling models fully account for the physics of the dense plasma of WD interiors. We use MESA to investigate cooling models for a set of massive and ultra-massive WDs…

Solar and Stellar Astrophysics · Physics 2020-10-21 Evan B. Bauer , Josiah Schwab , Lars Bildsten , Sihao Cheng

Gaia's exquisite parallax measurements allowed for the discovery and characterization of the Q branch in the Hertzsprung-Russell diagram, where massive C/O white dwarfs (WDs) pause their dimming due to energy released during…

Solar and Stellar Astrophysics · Physics 2023-09-15 Ken J. Shen , Simon Blouin , Katelyn Breivik

Recently, the power of Gaia data has revealed an enhancement of high-mass white dwarfs (WDs) on the Hertzsprung--Russell diagram, called the Q branch. This branch is located at the high-mass end of the recently identified crystallization…

Solar and Stellar Astrophysics · Physics 2019-12-12 Sihao Cheng , Jeffrey D. Cummings , Brice Ménard

White dwarf stars have attracted considerable attention in the past 15 years as hosts for potentially habitable planets, but their low luminosity and continuous cooling are major challenges for habitability. Recently, astronomers have found…

Earth and Planetary Astrophysics · Physics 2025-01-14 Andrew Vanderburg , Antoine Bédard , Juliette C. Becker , Simon Blouin

A population of anomalous ultra-massive white dwarfs discovered with Gaia, often referred to as the Q branch, show high (multi-Gyr) cooling delays produced by exotic physical mechanisms. They are believed to be the products of stellar…

Recent Monte Carlo plasma simulations to study in crystallizing carbon-oxygen (CO) white dwarfs (WDs) the phase separation of Ne22 (the most abundant metal after carbon and oxygen) have shown that, under the right conditions, a distillation…

Solar and Stellar Astrophysics · Physics 2024-06-05 Maurizio Salaris , Simon Blouin , Santi Cassisi , Luigi R. Bedin

We present three-dimensional hydrodynamical simulations of detonations in $1.0 \mathrm{M_{\odot}}$ white dwarfs that have undergone $^{22} \mathrm{Ne}$ distillation during crystallisation. These simulations, conducted with the moving-mesh…

Solar and Stellar Astrophysics · Physics 2025-12-04 Uri Pierre Burmester , Lilia Ferrario , Ivo R. Seitenzahl , Simon Blouin

Sedimentation of the neutron rich isotope $^{22}$Ne may be an important source of gravitational energy during the cooling of white dwarf stars. This depends on the diffusion constant for $^{22}$Ne in strongly coupled plasma mixtures. We…

Solar and Stellar Astrophysics · Physics 2010-12-02 C. J. Horowitz , J. Hughto , A. S. Schneider , D. K. Berry

Because of the large neutron excess of $^{22}$Ne, this isotope rapidly sediments in the interior of the white dwarfs. This process releases an additional amount of energy, thus delaying the cooling times of the white dwarf. This influences…

When white dwarfs freeze the plasma mixtures inside them undergo separation processes which can produce radical changes in the composition profile of the star. The abundance of neutron rich elements, such as $^{22}$Ne or $^{56}$Fe,…

Solar and Stellar Astrophysics · Physics 2023-04-12 Matthew E. Caplan , Simon Blouin , Ian F. Freeman

Do white dwarfs have inner cores made of iron? Neutron rich nuclei like $^{56}$Fe experience a net gravitational force and sediment toward the core. Using new phase diagrams and molecular dynamics simulations, we show that $^{56}$Fe should…

Solar and Stellar Astrophysics · Physics 2021-09-29 M. E. Caplan , I. F. Freeman , C. J. Horowitz , A. Cumming , E. P. Bellinger

We assess the impact of the trace element ^{22}Ne on the cooling and seismology of a liquid C/O white dwarf (WD). Due to this elements' neutron excess, it sinks towards the interior as the liquid WD cools. The subsequent gravitational…

Astrophysics · Physics 2009-11-07 Christopher J. Deloye , Lars Bildsten

Based on the linear mixing approach, we calculate the latent heat for crystallizing fully-ionized $^{12}$C/$^{16}$O and $^{16}$O/$^{20}$Ne mixtures in white dwarf (WD) cores for two different parametrizations of the corrections to the…

Solar and Stellar Astrophysics · Physics 2023-03-29 D. A. Baiko

Motivated by the strong discrepancy between the main sequence turn-off age and the white dwarf cooling age in the metal-rich open cluster NGC 6791, we compute a grid of white dwarf evolutionary sequences that incorporates for the first time…

Solar and Stellar Astrophysics · Physics 2015-05-19 Leandro G. Althaus , Enrique García-Berro , Isabel Renedo , Jordi Isern , Alejandro H. Córsico , Rene D. Rohrmann

Recent computations of the interior composition of ultra-massive white dwarfs (WD) have suggested that some white dwarfs could be composed of neon (Ne)-dominated cores. This result is at variance with our previous understanding of the…

Solar and Stellar Astrophysics · Physics 2022-03-23 Francisco C. De Gerónimo , Marcelo M. Miller Bertolami , Francisco Plaza , Márcio Catelan

The origin of atmospheric heating in the cool, magnetic white dwarf GD 356 remains unsolved nearly 40 years after its discovery. This once idiosyncratic star with $T_{\rm eff}\approx7500$ K, yet Balmer lines in Zeeman-split emission is now…

Solar and Stellar Astrophysics · Physics 2024-09-24 A. F. Lanza , N. Z. Rui , J. Farihi , J. D. Landstreet , S. Bagnulo

Accurate models of cooling white dwarfs must treat the energy released as their cores crystallize. This phase transition slows the cooling by releasing latent heat and also gravitational energy, which results from phase separation: liquid C…

Solar and Stellar Astrophysics · Physics 2023-12-20 M. H. Montgomery , Bart H. Dunlap
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