Nagoya University · Physics and Astronomy
유이치로 타다 교수의 연구실은 초기 우주에서의 블랙홀 형성과 암흑 에너지의 기원을 중심으로 한 고에너지 천체물리학 및 우주론을 연구합니다. 주로 초기 우주에서 형성된 원시 블랙홀(PBH)의 질량 스펙트럼, 비정상적 인플레이션 장면에서의 양자 효과 및 비상대성 이론적 일致성 관계를 분석하며, 특히 우주 구조 형성과 암흑물질의 기원을 연결하는 이론적 프레임워크를 개발하고 있습니다. 또한, 우주론적 양자 확산과 비선형 조건 하에서의 파워 스펙트럼 분석을 통해 PBH 생성 메커니즘의 정량적 예측을 도출하고 있습니다.
Figures are computed from collected data and may differ slightly.
The recent result of the Dark Energy Spectroscopic Instrument (DESI) in combination with other cosmological data shows evidence of the evolving dark energy parametrized by the ${w}_{0}{w}_{a}\mathrm{CDM}$ model. We interpret this result in terms of a quintessential scalar field and demonstrate that it can explain the DESI result even though it becomes eventually phantom in the past. Relaxing the assumption on the functional form of the equation-of-state parameter $w=w(a)$, we also discuss a more
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We investigate a possibility of primordial black hole (PBH) formation with a hierarchical mass spectrum in multiple phases of inflation. As an example, we find that one can simultaneously realize a mass spectrum that has recently attracted a lot of attention: stellar-mass PBHs ($\ensuremath{\sim}\mathcal{O}(10)\text{ }\text{ }{M}_{\ensuremath{\bigodot}}$) as a possible source of binary black holes detected by LIGO/Virgo collaboration, asteroid-mass ($\ensuremath{\sim}\mathcal{O}({10}^{\ensuremat
Abstract In canonical single-field inflation, the production of primordial black holes (PBH) requires a transient violation of the slow-roll condition. The transient ultra slow-roll inflation is an example of such scenarios, and more generally, one can consider the transient constant-roll inflation. We investigate the squeezed bispectrum in the transient constant-roll inflation and find that Maldacena's consistency relation holds for a sufficiently long-wavelength mode, whereas it is violated fo
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Abstract The axionic inflaton with the Chern-Simons coupling may generate U(1) gauge fields and charged particles simultaneously. In order to incorporate the backreaction from the charged particles on the gauge fields, we develop a procedure to obtain an equilibrium solution for the gauge fields by treating the induced current as effective electric and magnetic conductivities. Introducing mean field approximation, and numerically solving self-consistency equations, we find that the gauge field a
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Abstract We show that a hybrid inflation model with multiple waterfall fields can result in the formation of primordial black holes (PBHs) with an astrophysical size, by using an advanced algorithm to follow the stochastic dynamics of the waterfall fields. This is in contrast to the case with a single waterfall field, where the wavelength of density perturbations is usually too short to form PBHs of the astrophysical scale (or otherwise PBHs are overproduced and the model is ruled out) unless th
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Abstract We develop the stochastic formalism for U(1) gauge fields that has the Chern-Simons coupling to a rolling pseudo-scalar field during inflation. The Langevin equations for the physical electromagnetic fields are derived and the analytic solutions are studied. Using numerical simulation we demonstrate that the electromagnetic fields averaged over the Hubble scale continuously change their direction and their amplitudes fluctuate around the analytically obtained expectation values. Though
Abstract We investigate the probability distribution of the effective inspiral spin, the mass ratio, and the chirp mass of primordial black hole (PBH) binaries, incorporating the effect of the critical phenomena of gravitational collapse. As a leading order estimation, each binary is assumed to be formed from two PBHs that are randomly chosen according to the probability distribution of single PBHs, and the accretion effects on the mass and spin of each PBH are not considered for simplicity. We
We study the cancellation of quantum corrections on the superhorizon curvature perturbations from subhorizon physics beyond the single-clock inflation from the viewpoint of the cosmological soft theorem. As an example, we focus on the transient ultra-slow-roll inflation scenario and compute the one-loop quantum corrections to the power spectrum of curvature perturbations taking into account nontrivial surface terms in the action. We find that Maldacena's consistency relation is satisfied and gua
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