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Tie-Jun Gao

Publications and source records attributed to Tie-Jun Gao.

At least 19 recordsLinked to original sources

Nanohertz gravitational waves from domain walls nucleated during inflation

We investigate scalar-induced gravitational waves (SIGWs) produced by domain walls (DWs) nucleated via quantum tunneling during inflation with an extended nucleation time. In contrast to the small-period nucleation framework, in which DWs form over a narrow interval and possess nearly identical radii, we show that an extended nucleation period leads to a distribution of DW radii characterized by $γ\equiv\overline{R^4}/(\overline{R^2})^2>1$, which enhances the resulting curvature perturbations. We construct a two-field inflation model with an inflaton $ϕ$ and a spectator field $χ$ coupled through the potential $V(ϕ,χ)$, where the DW tension $σ(t)$ evolves smoothly as the inflaton rolls past a critical value. The characteristic width of this transition determines the cutoff scale $k_{\text{cut}}$ of the curvature power spectrum, enabling the SIGW peak to be placed in the nanohertz frequency band with detectable amplitude. For three representative parameter sets, we compute the SIGW spectra and find that the peak frequency ranges from $\sim10^{-8}$\,Hz to $\sim10^{-2}$\,Hz, with the nanohertz-peaked spectrum matching the NANOGrav and EPTA signals for suitable parameter choices. By selecting different parameters, our model can produce signals detectable by different gravitational-wave detectors.

gr-qc

Rare B meson decays in the Minimal R-symmetric Supersymmetric Standard Model

Taking into account the constraints imposed by experimental data on the parameter space, we analyze the lepton flavor violating decays of B meson in the scenario of the minimal R-symmetric supersymmetric standard model. The prediction of the branching ratios is strongly affected by $\tanβ$ and the off-diagonal entries in the slepton and squark mass matrices. The off-diagonal entries in the slepton mass matrix are constrained by the experimental limits of radiative two body decays of leptons. The off-diagonal entries in the squark mass matrix are constrained by the experimental limits of low energy observables related to B meson physics. The branching ratio of $B^0_d\rightarrow μτ$ is predicted to be four orders of magnitude below the future experimental sensitivity and the decay $B^0_d\rightarrow μτ$ has a higher chance of being observed in the future.

hep-ph

Gravitational waves from the E-model inflation with Gauss-Bonnet correction

In this work, we study the generation of gravitational waves in the E-model inflation with the scalar field non-minimally coupled to the Gauss-Bonnet term. Considering a wall-crossing behavior in the moduli space, we parameterize the coupling coefficient $ξ$ as a step-like function, then if $V_{,ϕ}ξ_{,ϕ}>0$, the Gauss-Bonnet term dominate the inflation dynamics, causing a short rapid-decline phase of the inflaton, and for appropriate parameter spaces, the mode equation of tensor perturbations develops a transient growing solution. This process generates a peak in the tensor perturbation power spectrum, corresponding to a peak in the gravitational wave energy spectrum around the nanohertz frequency band. Further more, we investigate the feasibility of generating double peaks in the gravitational wave spectrum using a double-step coupling, For certain parameter choices, one peak lies near nanohertz frequencies, while the other is around millihertz frequencies. Consequently, these gravitational waves can be observed by the pulsar timing array and the space-based gravitational wave detectors such as LISA, simultaneously.

astro-ph.CO

Gravitational waves and primordial black holes from the T-model inflation with Gauss-Bonnet correction

Recently, the worldwide Pulsar Timing Array (PTA) collaborations detected a stochastic gravitational wave(GW) background in the nanohertz range, which may originate from the early universe's inflationary phase. So in this work, we investigated induce GWs in the T-model inflation with Gauss-Bonnet coupling. Consider the scenario of traversing a domain wall in moduli space, we take the coupling coefficient to be an approximately step function. Within suitable parameter regions, the model exhibits de Sitter fixed points, which allows inflation to undergo an ultra-slow-roll phase, which causes the power spectrum to exhibit a peak. Such a peak can induce nanohertz GWs, which provids an explanation for the PTA observational data. Furthermore, we consider the case of multiple domain wall crossings, and adopting a double-step coupling function. In this case, the resulting GW spectrum has two peaks with frequencies around \(10^{-8} \,\text{Hz}\) and \(10^{-2}\,\text{Hz}\), respectively. Which can be observed by the PTA and the space GW detectors simultaneously.Additionally, the reentry of the power spectrum peaks into the horizon leads to the collapse into primordial black holes (PBHs). We calculate the abundance of PBHs and found that the masses is in the range of \(10^{-14} \sim 10^{-13} M_\odot\) and around \(10^{-2} M_\odot\) , which constitute significant components of the current dark matter.

astro-ph.CO

Rare top quark decays in the minimal R-symmetric supersymmetric standard model

The one-loop contributions to the flavor-changing neutral current decays of the top quark into a light quark and a gauge boson or Higgs boson, namely $t\rightarrow qV,qh$, with $q$ being $u$ or $c$, and $V$ being $γ$, $g$, or $Z$, are analyzed in this study within the framework of the minimal R-symmetric supersymmetric standard model. The charginos in this model have been separated into two sets, i.e., $χ$-chargino and $ρ$-chargino. The numerical results reveal that gluino or $ρ$-chargino predominantly dictate the predictions for BR($t\rightarrow qV,qh$), while the impact of neutralino or $χ$-chargino contributions is insignificant. By incorporating the constraints imposed by the squark mixing parameters from $\bar{B}\rightarrow X_sγ$ and $B^0_{d,s}\rightarrow μ^+μ^-$, the theoretical predictions for BR($t\rightarrow qg$) can be significantly augmented to approximately $\mathcal O(10^{-5}-10^{-6})$. On the other hand, the values of BR($t\rightarrow qγ,qZ,qh$) are predicted to be at least four orders of magnitude below the current experimental limits.

hep-ph

NANOGrav Signal from double-inflection-point inflation and dark matter

The NANOGrav collaboration has published a suspected stochastic GW background signal in its analysis of 12.5 years PTA data, so in this work, we investigate the possibility to explain the signal by the inflationary models with double-inflection-point. We calculate the energy spectrum of GWs induced by scalar perturbations, and show that the curve lies in the $2σ$ region of the NANOGrav constraints. In addition, we analyze the reheating process and dark matter production by assuming that the inflaton is coupled with the SM Higgs boson and singlet fermionic dark matter field. We discuss the radiative stability of the inflationary potential under one-loop corrections, calculate the reheating temperature, the dark matter production, and constraints the coupling parameters using the bounds of BBN, Lyman-$α$, etc.

gr-qc

Double peaks of gravitational wave spectrum induced from inflection point inflation

We investigate the possibility to induce double peaks of gravitational wave(GW) spectrum from primordial scalar perturbations in inflationary models with three inflection points.Where the inflection points can be generated from a polynomial potential or generated from Higgs like $ϕ^4$ potential with the running of quartic coupling.In such models, the inflection point at large scales predicts the scalar spectral index and tensor-to-scalar ratio consistent with current CMB constraints, and the other two inflection points generate two large peaks in the scalar power spectrum at small scales, which can induce GWs with double peaks energy spectrum. We find that for some choices parameters the double peaks spectrum can be detected by future GW detectors, and one of the peaks around $f\simeq10^{-9}\sim10^{-8}$Hz can also explain the recent NANOGrav signal. Moreover, the peaks of power spectrum allow for the generation of primordial black holes, which account for a significant fraction of dark matter.

astro-ph.CO

Gauss-Bonnet inflation with a constant rate of roll

We consider the constant-roll condition in the model of the inflaton nonminimal coupling to the Gauss-Bonnet term. By assuming the first Gauss-Bonnet flow parameter $δ_1$ is a constant, we discuss the constant-roll inflation with constant $ε_1$, constant $ε_2$ and constant $η_H$, respectively. Using the Bessel function approximation, we get the analytical expressions for the scalar and tensor power spectrum and derive the scalar spectral index $n_{\mathcal{R}}$ and the tensor to scalar ratio $r$ to the first order of $ε_1$. By using the Planck 2018 observations constraint on $n_{\mathcal{R}}$ and $r$, we obtain some feasible parameter space and show the result on the $n_{\mathcal{R}}-r$ region. The scalar potential is also reconstructed in some spectral cases.

gr-qc

Low-frequency Gravitational Waves from Double-inflection-point Inflation

We study the production of gravitational waves from primordial scalar perturbations in double-inflection-point inflation, in which one of the inflection points predicts the power spectra consistent with CMB observations at large scales and the other generates a large peak in the power spectrum of scalar perturbations at small scales. We find that the reduced gravitational waves at low frequencies can be detected by future space-based laser interferometers.

astro-ph.CO

Inflection point in running kinetic term inflation

In this work, we consider inflection point inflation in the framework of running kinetic term inflation in supergravity. We study the inflationary dynamics and show that the predicted value of the scalar spectral index and tensor-to-scalar ratio can lie within the $1σ$ confidence region allowed by the result of Planck 2015.

hep-ph

Inflection point inflation and dark energy in supergravity

We consider an inflection point inflationary model in supergravity with a single chiral superfield and show that the predicted values of the scalar spectral index and tensor-to-scalar ratio are consistent with the Planck 2015 results. In this model supersymmetry is strongly broken after inflation, which results in a non-SUSY de-Sitter vacuum responsible for the recent accelerated expansion of the Universe.

hep-th

$\bar{B}\rightarrow X_sγ$ in the $μν$SSM

The $μν$SSM, one of supersymmetric extensions beyond the Standard Model, introduces three singlet right-handed neutrino superfields to solve the $μ$ problem and can generate three tiny Majorana neutrino masses through the seesaw mechanism. In this work, we investigate the rare decay process $\bar{B}\rightarrow X_sγ$ in the $μν$SSM, under a minimal flavor violating assumption for the soft breaking terms. Constrained by the SM-like Higgs with mass around 125 GeV, the numerical results show that the new physics can fit the experimental data for $\bar{B}\rightarrow X_sγ$ and further constrain the parameter space.

hep-ph

${B^0} - {{\bar B}^0}$ mixing in supersymmetry with gauged baryon and lepton numbers

We perform an analysis on ${B^0} - {{\bar B}^0}$ mixing in the extension of the minimal supersymmetric standard model where baryon and lepton numbers are local gauge symmetries (BLMSSM) by using the effective Hamiltonian method. And the constraint of a 125 GeV Higgs to the parameter space has also been consid-ered. The numerical results indicate that the contributions of the extra particles can be sizeable in ${B^0} - {{\bar B}^0}$ mixing. For certain parameter sets, the theoretical prediction of mass differences $Δm_{B}$ agrees with the current experimental result. Furthermore, ${B^0} - {{\bar B}^0}$ mixing in the BLMSSM can preliminarily constrain the parameter space. With the development of more precise theoretical analysis and experimental determina-tions, the ${B^0} - {{\bar B}^0}$ mixing in the BLMSSM will have a clearer picture and the parameter space in this model will also be further constrained.

hep-ph

Top quark decay to a 125GeV Higgs in BLMSSM

In this paper, we calculate the top quark rare decay t-ch in a supersymmetric extension of the standard model where baryon and lepton numbers are local gauge symmetries. Adopting reasonable assumptions on the parameter space, we find that the branching ratios of t-ch can reach 10^-3, which can be detected in near future.

hep-ph

Lepton flavor violation decays of vector mesons in unparticle physics

We investigate the lepton flavor violation decays of vector mesons in the scenario of the unparticle physics by considering the constraint from $μ-e$ conversion. In unparticle physics, the predictions of LFV decays of vector mesons depend strongly on the scale dimension $d_{\mathcal{U}}$. The predictions of LFV decays of vector mesons can reach the detective sensitivity in experiment in region of $3\le d_{\mathcal{U}}\le 4$, while the prediction of $μ-e$ conversion rate can meet the experimental upper limit. For the searching of the lepton flavor violation processes of charged lepton sector in experiment, the process $Υ\rightarrow eμ$ may be a promising one to be observed.

hep-ph

Lepton-flavor violation and $(g-2)_μ$ in the $μν$SSM

Within framework of the $μ$ from $ν$ Supersymmetric Standard Model ($μν$SSM), exotic singlet right-handed neutrino superfields induce new sources for lepton-flavor violation. In this work, we investigate some lepton-flavor violating processes in detail in the $μν$SSM. The numerical results indicate that the branching ratios for lepton-flavor violating processes $μ\rightarrow eγ$, $τ\rightarrowμγ$ and $μ\rightarrow3e$ can reach $10^{-12}$ when $\tanβ$ is large enough, which can be detected in near future. We also discuss the constraint on the relevant parameter space of the model from the muon anomalous magnetic dipole moment. In addition, from the scalars for the $μν$SSM we strictly separate the Goldstone bosons, which disappear in the physical gauge.

hep-ph

t-c gamma and t-cg in warped extra dimensions

In this work, we calculate the top quark rare decays t-cgamma and t-cg in the framework where the standard model is embedded in a warped extra dimension with the custodial symmetry SU(3)c*SU(2)L*SU(2)R*U(1)x*PLR. Adopting reasonable assumptions on the parameter space,we numerically find the branching ratios of t-cgamma exceeding 10^-6 and that of t-cg exceeding 10^-5 respectively, which can be detected in near future.

hep-ph