1984
DOI: 10.1016/0370-2693(84)90334-4
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Cosmological gravitino regeneration and decay

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Cited by 772 publications
(778 citation statements)
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“…[47]. 9 Working with an upper limit on the primordial 6 Li/H abundance of [93] which provides a more relaxed Y e l − 1 limit. In Figs.…”
Section: Probing Tr With Primordial Nucleosynthesismentioning
confidence: 99%
See 1 more Smart Citation
“…[47]. 9 Working with an upper limit on the primordial 6 Li/H abundance of [93] which provides a more relaxed Y e l − 1 limit. In Figs.…”
Section: Probing Tr With Primordial Nucleosynthesismentioning
confidence: 99%
“…Accordingly, once produced in thermal scattering of particles in the hot primordial plasma [9,10,11,12,13,14,15,17], unstable gravitinos with a mass m e G < ∼ 5 TeV have long lifetimes, τ e G > ∼ 100 s, and decay during or after BBN. Since the decay products affect the abundances of the primordial light elements, successful BBN predictions imply a bound on the reheating temperature after inflation T R which governs the abundance of gravitinos before their decay [9,10,11,12,13,14,15,16,17]: T R < ∼ 10 8 GeV for m e G < ∼ 5 TeV [5,7]. We consider SUSY extensions of the Standard Model in which the gravitino G is the lightest supersymmetric particle (LSP) and a charged slepton l 1 -such as the lighter stau τ 1 -the next-to-lightest supersymmetric particle (NLSP).…”
Section: Introductionmentioning
confidence: 99%
“…The parameter λ is taken to range between 10 −4 and 10 −3 . Fixing the reheat temperature T reh to the value 10 9 GeV [34] and taking g * = 228.75 which corresponds to the MSSM spectrum, Eq. (4.7) yields the inflaton decay time t reh = Γ −1 infl ≃ 2.44 × 10 −1 GeV −1 .…”
Section: The Band Structurementioning
confidence: 99%
“…Inflation was used to dilute the primordial gravitinos, but thermal production of gravitinos are troublesome in cosmology if it exceeds [3] T R > 10 9 GeV.…”
Section: Axion and Gravitino Constraintsmentioning
confidence: 99%
“…But even after the reheating phase, the thermal production can be effective enough to create sufficient number of heavy particles to close the universe. It has been most extensively studied for the case of O(100 GeV) gravitino [3]. Because of the gravitino problem, we consider the reheating temperature below 10 9 GeV.…”
Section: Introductionmentioning
confidence: 99%