4.4 Review

r-process nucleosynthesis: connecting rare-isotope beam facilities with the cosmos

出版社

IOP Publishing Ltd
DOI: 10.1088/1361-6471/ab0849

关键词

nucleosynthesis; rare-isotope beam facilities; r-process nucleosynthesis; galactic chemical evolution

资金

  1. National Science Foundation [PHY-1102511, PHY-1430152]
  2. International Collaborations in Nuclear Theory program
  3. Physics Frontier Center/JINA Center for the Evolution of the Elements (JINA-CEE) - US National Science Foundation
  4. US Department of Energy [DOE-DE-FG02-87ER40365, DE-SC0018083, DOE-DE-NA0002847, DE-SC0013365]
  5. Helmholtz-University Young Investigator grant [VH-NG-825]
  6. Deutsche Forschungsgemeinschaft [SFB 1245]
  7. European Research Council through ERC [677912 EUROPIUM]
  8. Canadian NSERC Discovery Grants [SAPIN-2014-00028, RGPAS 462257-2014]
  9. IMPRS-PTFS [UNAM-DGAPA/PAPIIT IV100116]
  10. European Research Council under the European Unions's Seventh Framework Programme [615126]
  11. ERC Consolidator Grant (Hungary) funding scheme [724560]
  12. National Aeronautics and Space Administration (NASA) [NNX15AP39G]
  13. Hubble Theory Grant [HST-AR-13 261.01-A]
  14. NSF [AST-1514700]
  15. NASA through Einstein Postdoctoral Fellowship [PF4-150122, NAS8-03060]
  16. Chinese National Key Research and Development program [MOST 2016YFA0400501, 2016YFA0400504]
  17. National Natural Science Foundation of China [11475228, 11490564]
  18. 100 talents Program of the Chinese Academy of Sciences
  19. Department of Energy/National Nuclear Security Administration [DE-NA0003221, DE-NA0003180]
  20. US Department of Energy through the Los Alamos National Laboratory
  21. National Nuclear Security Administration of US Department of Energy [DEAC52-06NA25396]
  22. European Research Council [ERC AdG 341157-COCO2CAS]
  23. Max-Planck Princeton Center for Plasma Physics (MPPC)
  24. US Department of Energy, Office of Nuclear Physics [DE-AC02-06CH11357]
  25. Academy of Finland [275389, 284516, 312544]
  26. European Research Council (ERC) [615126] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

This is an exciting time for the study of r-process nucleosynthesis. Recently, a neutron star merger GW170817 was observed in extraordinary detail with gravitational waves and electromagnetic radiation from radio to gamma rays. The very red color of the associated kilonova suggests that neutron star mergers are an important r-process site. Astrophysical simulations of neutron star mergers and core collapse supernovae are making rapid progress. Detection of both electron neutrinos and antineutrinos from the next galactic supernova will constrain the composition of neutrino-driven winds and provide unique nucleosynthesis information. Finally, FRIB and other rare-isotope beam facilities will soon have dramatic new capabilities to synthesize many neutron-rich nuclei that are involved in the r-process. The new capabilities can significantly improve our understanding of the r-process and likely resolve one of the main outstanding problems in classical nuclear astrophysics. However, to make best use of the new experimental capabilities and to fully interpret the results, a great deal of infrastructure is needed in many related areas of astronomy, astrophysics, and nuclear theory. We place these experiments in context by discussing astrophysical simulations and observations of r-process sites, observations of stellar abundances, galactic chemical evolution, and nuclear theory for the structure and reactions of very neutron-rich nuclei. This review paper was initiated at a three-week International Collaborations in Nuclear Theory program in June 2016, where we explored promising r-process experiments and discussed their likely impact, and their astronomical, astrophysical, and nuclear theory context.

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