東京大学 · 物理学・天文学
Yokoyama教授の研究室は、インフレーション宇宙論と初期宇宙の非一様性に注目し、特に初期宇宙における密度揺らぎがもたらす高密度な構造形成、とりわけ原始ブラックホール(PBH)の生成とその宇宙論的制約を主なテーマとしています。インフレーションの途中で発生する不安定なエネルギー状態や、スカラー場のダイナミクスがもたらす非摂動的揺らぎの特徴を理論的に解明し、観測的制約と照らし合わせた精密な予測を展開しています。また、PBHが銀河の暗黒物質の候補となり得るメカニズムの構築にも貢献しています。
Figures are computed from collected data and may differ slightly.
It is shown that in a number of scalar potentials with an unstable local maximum at the origin chaotic inflation is followed by new inflation if model parameters are appropriately chosen. In this model density fluctuation can have a large-amplitude peak on the comoving Hubble scale at the onset of the slow-roll new inflation and can result in the formation of an appreciable amount of primordial black holes on astrophysically interesting mass scales.
We show that it is extremely difficult and perhaps even impossible to have inflation supported by thermal effects.
The mass function of primordial black holes created through the near-critical gravitational collapse is calculated in a manner fairly independent of the statistical distribution of underlying density fluctuation, assuming that it has a sharp peak on a specific scale. Comparing it with various cosmological constraints on their mass spectrum, some newly excluded range is found in the volume fraction of the region collapsing into black holes as a function of the horizon mass.
The spectrum of curvature perturbation generated during inflation is studied in the case the inflation-driving scalar field (inflaton) φ crosses over its potential extremum. It is shown that the nondecaying mode of perturbation has a finite value and a proper formula is given. The result is also extended to more general cases where φ̈ is nonnegligible.
We update the constraints on the fraction of the Universe that may have gone into primordial black holes (PBHs) over the mass range 10<sup>-5</sup>to 10<sup>50</sup> g. Those smaller than ∼10<sup>15</sup> g would have evaporated by now due to Hawking radiation, so their abundance at formation is constrained by the effects of evaporated particles on big bang nucleosynthesis, the cosmic microwave background (CMB), the Galactic and extragalactic<i>γ</i>-ray and cosmic ray backgrounds and the possib
As a nonbaryonic explanation of massive compact halo objects, a phenomenological model is presented which predicts formation of primordial black holes at a desired mass scale. The required feature of initial density fluctuation is realized making use of the primordially isocurvature fluctuation generated in an inflationary universe model with multiple scalar fields.
A new scenario of cosmic strings is presented which is free from the gravitational-radiation constraints imposed on their line density by the primordial nucleosynthesis and the timing data of a millisecond pulsar. In this scenario the phase transition is induced nonthermally during the inflation so that it is not necessary to assume Friedmann-Robertson-Walker universe in thermal equilibrium at the outset.
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