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r-process nucleosynthesis in the early Universe through fast mergers of compact binaries in triple systems

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arxiv 1801.03506 v2 pith:2XHJXFU2 submitted 2018-01-10 astro-ph.HE astro-ph.COgr-qc

r-process nucleosynthesis in the early Universe through fast mergers of compact binaries in triple systems

classification astro-ph.HE astro-ph.COgr-qc
keywords binariescompactobjectnucleosynthesisprocessbinaryfractioninner
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Surface abundance observations of halo stars hint at the occurrence of $r$-process nucleosynthesis at low metallicity ($\rm{[Fe/H]< -3}$), possibly within the first $10^8$ yr after the formation of the first stars. Possible loci of early-Universe $r$-process nucleosynthesis are the ejecta of either black hole--neutron star or neutron star--neutron star binary mergers. Here we study the effect of the inclination--eccentricity oscillations raised by a tertiary (e.g. a star) on the coalescence time scale of the inner compact object binaries. Our results are highly sensitive to the assumed initial distribution of the inner binary semi-major axes. Distributions with mostly wide compact object binaries are most affected by the third object, resulting in a strong increase (by more than a factor of 2) in the fraction of fast coalescences. If instead the distribution preferentially populates very close compact binaries, general relativistic precession prevents the third body from increasing the inner binary eccentricity to very high values. In this last case, the fraction of coalescing binaries is increased much less by tertiaries, but the fraction of binaries that would coalesce within $10^8$ yr even without a third object is already high. Our results provide additional support to the compact object merger scenario for $r$-process nucleosynthesis.

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