4.7 Article

Fast neutrino conversion in hydrodynamic simulations of neutrino-cooled accretion disks

期刊

PHYSICAL REVIEW D
卷 105, 期 8, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.105.083024

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资金

  1. European Research Council (ERC) under the European Union [759253]
  2. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [Sonderforschungsbereich SFB 1245]
  3. DFG [SFB 1258]
  4. Ministry of Science and Technology, Taiwan [110-2112-M-001-050]
  5. Academia Sinica [AS-CDA-109-M11]
  6. Physics Division of the National Center for Theoretical Sciences, Taiwan
  7. Villum Foundation [37358]
  8. Danmarks Frie Forskningsfonds [804900038B]
  9. DFG under Germanys Excellence Strategy through Cluster of Excellence ORIGINS (EXC-2094) [390783311]
  10. GVA [CDEIGENT/2020/003]

向作者/读者索取更多资源

This study investigates the role of fast neutrino flavor conversion in black hole accretion disks formed in neutron-star mergers or collapsing stars. The results show that fast conversions enhance the cooling rates of the disk, reduce the electron fraction, and increase the production of elements in the rapid neutron-capture process. Additionally, fast conversions prolong the duration of the kilonova event.
The outflows from neutrino-cooled black hole accretion disks formed in neutron-star mergers or cores of collapsing stars are expected to be neutron-rich enough to explain a large fraction of elements created by the rapid neutron-capture process, but their precise chemical composition remains elusive. Here, we investigate the role of fast neutrino flavor conversion, motivated by the findings of our post-processing analysis that shows evidence of electron-neutrino lepton-number crossings deep inside the disk, hence suggesting possibly nontrivial effects due to neutrino flavor mixing. We implement a parametric, dynamically self-consistent treatment of fast conversion in time-dependent simulations and examine the impact on the disk and its outflows. By activating the otherwise inefficient, emission of heavy-lepton neutrinos, fast conversions enhance the disk cooling rates and reduce the absorption rates of electron-type neutrinos, causing a reduction of the electron fraction in the disk by 0.03-0.06 and in the ejected material by 0.01-0.03. The rapid neutron-capture process yields are enhanced by typically no more than a factor of two, rendering the overall impact of fast conversions modest. The kilonova is prolonged as a net result of increased lanthanide opacities and enhanced radioactive heating rates. We observe only mild sensitivity to the disk mass, the condition for the onset of flavor conversion, and to the considered cases of flavor mixing. Remarkably, parametric models of flavor mixing that conserve the lepton numbers per family result in an overall smaller impact than models invoking three-flavor equipartition, often assumed in previous works.

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