Synthesis of thorium and uranium in asymptotic giant branch stars
arXiv:2211.03824 · doi:10.1051/0004-6361/202244928
Abstract
The intermediate neutron capture process (i-process) operates at neutron densities between those of the slow and rapid neutron-capture processes. It can be triggered by the ingestion of protons in a convective helium-burning region. One possible astrophysical site is low-mass low-metallicity asymptotic giant branch (AGB) stars. We study here the possibility that actinides (particularly Th and U) may be significantly synthesized through i-process nucleosynthesis in AGB stars. We computed a 1 model at [Fe/H] with the stellar evolution code STAREVOL. We used a nuclear network of 1160 species from H to Cf coupled to the transport processes. During the proton ingestion event, the neutron density goes up to cm. While most of the nuclear flow cycles in the neutron-rich Pb-Bi-Po region, a non-negligible fraction leaks towards heavier elements and eventually synthesizes actinides. The surface enrichment in Th and U is subject to nuclear and astrophysical model uncertainties that could be lowered in the future, in particular by a detailed analysis of the nuclear inputs that affect the neutron capture rates of neutron-rich isotopes between Pb and Pa. One stellar candidate that may confirm the production of actinides by the i-process is the carbon-enhanced metal-poor r/s star J0949-1617, which shows Th lines in its spectrum. Its surface abundance is shown to be reasonably well reproduced by our AGB model. Combined with cosmochronometry, this finding opens the way to dating the i-process event and thus obtaining a lower limit for the age of CEMP-r/s stars. Such a dating is expected to be accurate only if surface abundances of Th and U can be extracted simultaneously. This work shows that actinides can be synthesized in AGB stars through the i-process. As a consequence, the r-process may not be the sole mechanism for the production of U and Th.
6 pages, 3 figures, accepted in A&A
References in corpus (11)
- Reference Database for Photon Strength Functions
- The Hamburg/ESO R-process Enhanced Star survey (HERES) III. HE 0338-3945 and the formation of the r+s stars
- Astronuclear Physics: a Tale of the Atomic Nuclei in the Skies
- Databases and tools for nuclear astrophysics applications BRUSsels Nuclear LIBrary (BRUSLIB), Nuclear Astrophysics Compilation of REactions II (NACRE II) and Nuclear NETwork GENerator (NETGEN)
- New insights on Ba over-abundance in open clusters. Evidence for the intermediate neutron-capture process at play?
- Barium Isotopic Composition of Mainstream Silicon Carbides from Murchison: Constraints for s-Process Nucleosynthesis in AGB Stars
- Low-mass low-metallicity AGB stars as an efficient i-process site explaining CEMP-rs stars
- The intermediate neutron capture process. III. The i-process in AGB stars of different masses and metallicities without overshoot
- The intermediate neutron capture process II.Nuclear uncertainties
- Shell-model based study of the direct capture in neutron-rich nuclei
- The intermediate neutron capture process. I. Development of the i-process in low-metallicity low-mass AGB stars
Cited by in corpus (4)
- s-process Enriched Evolved Binaries in the Galaxy and the Magellanic Clouds
- An Alternative Formation Scenario for Uranium-rich Giants: Engulfing a Earth-like Planet
- Statistical framework for nuclear parameter uncertainties in nucleosynthesis modeling of r- and i-process
- Universality and variability of the heavy r-process element abundance pattern from a nonequilibrium approach