New phase diagrams for dense carbon-oxygen mixtures and white dwarf evolution
Leandro G. Althaus, Enrique Garc\'ia-Berro, Jordi Isern, Alejandro H., C\'orsico, Marcelo M. Miller Bertolami

TL;DR
This study investigates how a new phase diagram for dense carbon-oxygen mixtures affects white dwarf cooling ages, revealing significant differences that impact stellar age estimates and globular cluster dating.
Contribution
The paper applies a recently derived molecular dynamics phase diagram to white dwarf evolution models, showing its effects on cooling delays compared to previous diagrams.
Findings
Energy release from phase separation is smaller with the new phase diagram.
Cooling delays are approximately half of those predicted by older models.
Implications for white dwarf cosmochronology and globular cluster age estimates.
Abstract
Cool white dwarfs are reliable and independent stellar chronometers. The most common white dwarfs have carbon-oxygen dense cores. Consequently, the cooling ages of very cool white dwarfs sensitively depend on the adopted phase diagram of the carbon-oxygen binary mixture. A new phase diagram of dense carbon-oxygen mixtures appropriate for white dwarf interiors has been recently obtained using direct molecular dynamics simulations. In this paper, we explore the consequences of this phase diagram in the evolution of cool white dwarfs. To do this we employ a detailed stellar evolutionary code and accurate initial white dwarf configurations, derived from the full evolution of progenitor stars. We use two different phase diagrams, that of Horowitz et al. (2010), which presents an azeotrope, and the phase diagram of Segretain & Chabrier (1993), which is of the spindle form. We computed the…
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