HD 222925: a New Opportunity to Explore the Astrophysical and Nuclear Conditions of r-process Sites
arXiv:2210.10122 · doi:10.3847/1538-4357/acccf3
Abstract
With the most trans-iron elements detected of any star outside the Solar System, HD 222925 represents the most complete chemical inventory among r-process-enhanced, metal-poor stars. While the abundance pattern of the heaviest elements identified in HD 222925 agrees with the scaled Solar r-process residuals, as is characteristic of its r-process-enhanced classification, the newly measured lighter r-process elements display marked differences from their Solar counterparts. In this work, we explore which single astrophysical site (if any) produced the entire range of elements () present in HD 222925. We find that the abundance pattern of lighter r-process elements newly identified in HD 222925 presents a challenge for our existing nucleosynthesis models to reproduce. The most likely astrophysical explanation for the elemental pattern of HD 222925 is that its light r-process elements were created in rapidly expanding ejecta (e.g., from shocked, dynamical ejecta of compact object merger binaries). However, we find that the light r-process-element pattern can also be successfully reproduced by employing different nuclear mass models, indicating a need for a fresh investigation of nuclear input data for elements with by experimental methods. Either way, the new elemental abundance pattern of HD 222925 -- particularly the abundances obtained from space-based, ultraviolet (UV) data -- call for a deeper understanding of both astrophysical r-process sites and nuclear data. Similar UV observations of additional r-process-enhanced stars will be required to determine whether the elemental abundance pattern of HD 222925 is indeed a canonical template for the r-process at low metallicity.
14 pages, 9 figures
References in corpus (21)
- Surface diffuseness correction in global mass formula
- Further improvements on a global nuclear mass model
- Complete element abundances of nine stars in the r-process galaxy Reticulum II
- Detection of Elements at All Three r-process Peaks in the Metal-Poor Star HD 160617
- Estimates for Disk and Ejecta Masses Produced in Compact Binary Mergers
- Mass ejection from neutron star mergers: different components and expected radio signals
- Outflows from accretion disks formed in neutron star mergers: effect of black hole spin
- The -Process Alliance: Fourth Data Release from the Search for -Process-Enhanced Stars in the Galactic Halo
- How many nucleosynthesis processes exist at low metallicity?
- Comprehensive study of mass ejection and nucleosynthesis in binary neutron star mergers leaving short-lived massive neutron stars
- General-relativistic neutrino-radiation magnetohydrodynamic simulation of seconds-long black hole-neutron star mergers
- Dynamical ejecta from precessing neutron star-black hole mergers with a hot, nuclear-theory based equation of state
- A high-entropy wind r-process study based on nuclear-structure quantities from the new finite-range droplet model FRDM(2012)
- Probing the production of actinides under different r-process conditions
- Evidence for the accretion origin of halo stars with an extreme r-process enhancement
- Constraining nucleosynthesis in neutrino-driven winds: observations, simulations and nuclear physics
- The R-Process Alliance: Abundance Universality among Some Elements at and between the First and Second R-Process Peaks
- Extreme r-process enhanced stars at high metallicity in Fornax
- Trans-iron Ge, As, Se, and heavier elements in the dwarf metal-poor stars, HD~19445, HD~84937, HD~94028, HD~140283, and HD~160617
- Markov Chain Monte Carlo Predictions of Neutron-rich Lanthanide Properties as a Probe of -process Dynamics
- Reconstructing Masses of Merging Neutron Stars from Stellar -Process Abundance Signatures