Presupernova Evolution with Improved Rates for Weak Interactions
arXiv:astro-ph/0011507 · doi:10.1086/324092
Abstract
Recent shell-model calculations of weak-interaction rates for nuclei in the mass range A = 45 - 65 have resulted in substantial revisions to the hitherto standard set of Fuller, Fowler, & Newman (FFN). In particular, key electron-capture rates, such as that for Co60 are much smaller. We consider here the effects of these revised rates on the presupernova (post-oxygen burning) evolution of massive stars in the mass range 11 to 40 M_sun. Moreover, we include, for the first time in models by our group, the effects of modern rates for beta-decay in addition to electron capture and positron emission. Values for the central electron mole number at the time of iron core collapse in the new models are typically larger, by delta Y_e = 0.005 to 0.015, than those of Woosley & Weaver 1995, with a tendency for the more massive models to display larger differences. About half of this change is a consequence of including beta-decay; the other half, result of the smaller rates for electron capture. Unlike what might be expected solely on basis of the larger Y_e's, the new iron core masses are systematically smaller owing to a decrease in the entropy in the outer iron core. The changes in iron core mass range from zero to 0.1 M_sun. We also observe, as predicted by Aufderheide et al. (1994), a tendency towards beta-equilibrium just prior to the collapse of the core, and the subsequent loss of that equilibrium as core collapse proceeds. We discuss the key weak reaction rates, both beta-decay and electron-capture, responsible for the evolution of Y_e and make suggestions for future measurements.
22 pages including 17 PostScript figures, uses emulateapj.sty, submitted to ApJ
Cited by in corpus (90)
- Modules for Experiments in Stellar Astrophysics (MESA): Binaries, Pulsations, and Explosions
- The Shell Model as Unified View of Nuclear Structure
- Nucleosynthesis in Massive Stars With Improved Nuclear and Stellar Physics
- Theory of Core-Collapse Supernovae
- Galactic Evolution of Sr, Y, Zr: A Multiplicity of Nucleosynthetic Processes
- Nuclear weak-interaction processes in stars
- Nucleosynthesis of Zinc and Iron-Peak Elements in Pop III Type II Supernovae : Comparison with abundances of Very Metal-Poor Halo Stars
- Explosion Mechanism, Neutrino Burst, and Gravitational Wave in Core-Collapse Supernovae
- The Remarkable Deaths of 9 - 11 Solar Mass Stars
- Electron capture rates on nuclei and implications for stellar core collapse
- The Evolution of Massive Helium Stars Including Mass Loss
- Nucleosynthesis-relevant conditions in neutrino-driven supernova outflows. I. Spherically symmetric hydrodynamic simulations
- Improved estimate of electron capture rates on nuclei during stellar core collapse
- Abundances of Cu and Zn in metal-poor stars: clues for Galaxy evolution
- On Variations Of Pre-Supernova Model Properties
- Towards a Realistic Explosion Landscape for Binary Population Synthesis
- The (t,3He) and (3He,t) reactions as probes of Gamow-Teller strength
- GT strengths and electron-capture rates for pf-shell nuclei of relevance for late stellar evolution
- Detection possibility of the pair-annihilation neutrinos from the neutrino-cooled pre-supernova star
- Effects of Inelastic Neutrino-Nucleus Scattering on Supernova Dynamics and Radiated Neutrino Spectra
- Neutrino-nucleus reactions and their role for supernova dynamics and nucleosynthesis
- Two-Dimensional Simulations of Pulsational Pair-Instability Supernovae
- General Relativistic Instability Supernova of a Supermassive Population III Star
- Gamow-Teller strength distributions at finite temperatures and electron capture in stellar environments
- Pair Instability Supernovae of Very Massive Population III Stars
- Electron capture in stars
- Contrasting copper evolution in Omega Centauri and the Milky Way
- Measurement of the Gamow-Teller Strength Distribution in 58Co via the 58Ni(t,3He) reaction at 115 MeV/nucleon
- Nucleosynthesis-relevant conditions in neutrino-driven supernova outflows. II. The reverse shock in two-dimensional simulations
- Stellar electron-capture rates in pf-shell nuclei from quasiparticle random-phase approximation calculations
- Nucleosynthesis of binary-stripped stars
- On ion-ion correlation effects during stellar core collapse
- Presupernova neutrinos: realistic emissivities from stellar evolution
- Carbon Deflagration in Type Ia Supernova: I. Centrally Ignited Models
- Properties of a relativistic equation of state for collapse-driven supernovae
- The Impact of Helium-Burning Reaction Rates on Massive Star Evolution and Nucleosynthesis
- Nuclear Input for Core-collapse Models
- Unblocking of stellar electron capture for neutron-rich nuclei at finite temperature
- On the temperature dependence of the symmetry energy
- Stellar electron capture rates on neutron-rich nuclei and their impact on core-collapse
- Low-energy Population III supernovae and the origin of extremely metal-poor stars
- Resonant spin-flavor conversion of supernova neutrinos: Dependence on presupernova models and future prospects
- Gamow-Teller transitions to 64-Cu measured using the 64-Zn(t,3-He) reaction
- Electron fraction constraints based on Nuclear Statistical Equilibrium with beta equilibrium
- The Piecewise Moments Method: A Generalized Lanczos Technique for Nuclear Response Surfaces
- Evolution and final fate of massive post-common-envelope binaries
- Modification of magicity towards the dripline and its impact on electron-capture rates for stellar core-collapse
- Massive Stars and their Supernovae
- On Stellar Evolution In A Neutrino Hertzsprung-Russell Diagram
- Weak-interaction mediated rates on iron isotopes for presupernova evolution of massive stars
- Stellar electron capture rates based on finite temperature relativistic quasiparticle random-phase approximation
- Impact of electron capture rates on nuclei far from stability on core-collapse supernovae
- Ground and excited states Gamow-Teller strength distributions of iron isotopes and associated capture rates for core-collapse simulations
- Investigation of important weak interaction nuclei in presupernova evolution
- Contribution of excited states to stellar weak-interaction rates in odd-A nuclei
- Thermal quasiparticle random-phase approximation calculations of stellar electron capture rates with the Skyrme effective interaction
- Nickel isotopes in stellar matter
- Stellar decay rates of iron isotopes and its implications in astrophysics
- Physics of Superluminous Supernovae
- Resonant Spin-Flavor Conversion of Supernova Neutrinos: Dependence on Electron Mole Fraction
- Study of Gamow-Teller transitions in isotopes of titanium within the quasi particle random phase approximation
- Stellar Neutrino Emission Across The Mass-Metallicity Plane
- Spin-isospin transitions in chromium isotopes within the quasiparticle random phase approximation
- LMC X-3 May Be a Relic of a GRB Similar to Cosmological GRBs
- Investigation of Gamow Teller Transition Properties in 56-64Ni Isotopes Using QRPA Methods
- A modified Brink-Axel hypothesis for astrophysical Gamow-Teller transitions
- Gamow-Teller strength distributions and neutrino energy loss rates due to chromium isotopes in stellar matter
- Beta decay and electron capture rates on manganese isotopes in astrophysical environments
- Expanded calculation of weak-interaction mediated neutrino cooling rates due to Ni in stellar matter
- Pair-Instability Supernovae of Fast Rotating Stars
- Re examination of the effect of Pairing Gaps on Gamow Teller Strength Distributions and beta decay Rates
- Gamow-Teller strength and lepton captures rates on 66-71Ni in stellar matter
- Neutrino and antineutrino energy loss rates in massive stars due to isotopes of titanium
- Study of Gamow-Teller strength and associated weak-rates on odd-A nuclei in stellar matter
- Beta decay rates for nuclei with 115 < A < 140 for r-process nucleosynthesis
- Effect of Electron Screening on the Collapsing Process of Core-Collapse Supernovae
- Evolving massive stars to core collapse with GENEC: Extension of equation of state, opacities and effective nuclear network
- Neutrino cooling rates due to Fe for presupernova evolution of massive stars
- Stellar Weak Rates and Mass Fractions of 20 Most Important -shell Nuclei with
- Strongly screening on electron capture for Nuclides Fe by the Shell-Model Monte Carlo method in pre-supernova
- Electron capture strength on odd-A nucleus Co in explosive astrophysical environment
- Nuclear structure properties and weak interaction rates of even-even Fe isotopes
- The THESEUS space mission: science goals, requirements and mission concept
- Gamow-Teller strength distribution in proton-rich nucleus Zn and its implications in astrophysics
- Impact of Coulomb Correction Factor on Rate of Change of Lepton Fraction during Presupernova Evolution
- Neutrino cooling rates due to nickel isotopes for presupernova evolution of massive stars
- Energy rates due to Fe isotopes during presupernova evolution of massive stars
- Nuclear inputs of key iron isotopes for core-collapse modeling and simulation
- Fluid Instabilities of Magnetar-Powered Supernovae
- And Don't Forget The Black Holes