PaperPanorama

HEP Phenomenology·hep-ph

Wed·Jan 22, 2025

28 papers22 primary·6 cross-listed·reconstructed*

  1. 01*

    Axion-like-particle dark matter beyond the standard paradigm

    Cem Eröncel🇹🇷

    Axions and axion-like particles (ALPs) are among the most popular candidates that explain the origin of the mysterious dark matter. The most popular ALP production mechanism studied in the literature is the misalignment mechanism, where an ALP field with a quadratic or cosine potential has negligible kinetic energy initially, and it starts oscillating when its mass becomes comparable to the Hubble scale. Recently, there has been an interest in models that go beyond the standard assumptions. These models not only extend the ALP dark matter parameter space, but also provide a rich phenomenology which is absent in the standard scenario. In particular, the ALP fluctuations grow exponentially via parametric resonance and tachyonic instabilities. In this proceeding, we will first demonstrate why the standard paradigm cannot explain dark matter in experimentally interesting parts of the parameter space, and then we will give an overview of the alternative production mechanism with which this issue can be resolved. We will then discuss the exponential growth of the fluctuations in these models. Finally, we will comment on the observational consequences of the exponential growth and show that a sizable region of the ALP parameter space becomes testable even if ALPs have only gravitational interactions.

    hep-phastro-ph.COPoS(2025)·1 citation
  2. 02*

    Region analysis of via a bottom quark loop

    Jun-Yao Hou🇨🇳 · Jian Wang🇨🇳 · Da-Jiang Zhang🇨🇳

    The decay is an ideal process to study the structure of next-to-leading power logarithms induced by quarks due to its simple initial and final states. We perform a region analysis of this process up to two-loop level to inspect the origins of the logarithms. To deal with the endpoint singularities that are prevalent for the next-to-leading power logarithms, we have adopted two different kinds of regulators to exhibit the advantages and disadvantages of each regulator. In the analytic regulator we have chosen, the power of the propagator is changed by . And the endpoint singularities are regulated in the form of . These poles cancel between the collinear and anti-collinear sectors since there is no soft mode in such a regulator. In the regulator, the soft sector is important. The leading and next-to-leading logarithms can be inferred from only this sector. Moreover, the symmetry between the collinear and anti-collinear sectors is preserved. After imposing a cut on the bottom quark transverse momentum, the leading order result is finite in each sector. We also discuss the next-to-next-to-leading power contributions and find that the potential factorization formulae involve two-dimensional endpoint singularities. Our region analysis could help to develop sophisticated factorization and resummation schemes beyond leading power.

    hep-phJHEP(2025)·8 citations
  3. 03*

    Nucleon electric dipole form factor in QCD vacuum

    Wei-Yang Liu🇺🇸 · Ismail Zahed🇺🇸

    In the QCD vacuum, the nucleon form factors receive contributions from the underlying ensemble of topological pseudoparticles, which are sensitive to a finite vacuum angle . We use this observation to derive a novel relationship between the Pauli and electric dipole form factors, for light quark flavors. This relationship allows for an explicit derivation of the proton and neutron electric dipole moments induced by a small CP violating angle, in terms of the vacuum topological susceptibity times pertinent magnetic moments. The results compare well with some recent lattice estimates.

    hep-phhep-lathep-thnucl-thPRD(2025)·6 citations
  4. 04*

    Finite T topological Susceptibility with heavy Quarks

    Bruno Högl🇩🇪 · Guy D. Moore🇩🇪

    Axion cosmology needs the QCD topological susceptibility between 400 and 1100 MeV. In this range the bottom quark is inconvenient to include in lattice simulations, but not heavy enough to ignore. We estimate its effect on the susceptibility by computing the ratio of the 4-quark susceptibility and the 4+1-quark susceptibility in the caloron gas approximation. We do so by computing small-mass and large-mass expansions of the finite mass and temperature fluctuation determinant and connecting them with a Padé approximant.

    hep-phJHEP(2025)·0 citations
  5. 05*

    The Light Neutralino Dark Matter in the Generalized Minimal Supergravity (GmSUGRA)

    Imtiaz Khan🇨🇳 · Waqas Ahmed🇨🇳 · Tianjun Li🇨🇳 · Shabbar Raza🇵🇰 · Ali Muhammad🇨🇳

    We investigate both the and poles solutions for the Higgsino mass parameter and for the neutralino dark matter in light of the LHC supersymmetry searches and the direct detection dark matter experiments, LUX-ZEPLIN (LZ), in the Generalized Minimal Supergravity (GmSUGRA). Our study indicates that the latest experimental constraints from the LHC and LZ Collaborations exclude the light Higgsinos in the and pole regions for the case. Interestingly, for the case, a very light Higgsinos can still be consistent with the current constraints from the electroweakino searches and LZ experiment in the and poles. Consequently, the case appears more promising and thus requires the dedicated efforts to make definitive conclusions about their current status from the experimental Collaborations. In this framework, our findings indicate a deviation of up to from the central value of \( a_\mu \equiv (g-2)_\mu/2 \), resonating with the experimental results reported by CMD and BDM.

    hep-phPLB(2025)·4 citations
  6. 06*

    Supernova constraints on lepton flavor violating ALPs

    Yonglin Li🇨🇳 · Zuowei Liu🇨🇳

    Supernovae offer a unique hot and dense environment to probe new physics beyond the Standard Model. We investigate supernova cooling constraints on lepton-flavor-violating (LFV) axions and axion-like particles (ALPs) that couple to electrons and muons. For LFV-ALP production in supernovae, muon decay and lepton bremsstrahlung have been considered previously. In this work, we identify the electron-muon coalescence channel as an efficient new production mechanism in the high-mass regime. We also include the semi-Compton scattering process, which has recently been shown to provide sizable contributions for electron-coupled ALPs. We find that muon decay dominates in the low-mass regime, electron-muon coalescence becomes the leading channel at high masses, and semi-Compton scattering provides the dominant contribution in the intermediate mass range. We find that the electron-muon coalescence process yields the strongest constraints in the mass range of MeV, probing the ALP-electron-muon coupling down to for an ALP mass of MeV.

    hep-phastro-ph.COastro-ph.HEPRD(2026)·13 citations
  7. 07*

    CGC-induced longitudinal ridge in p-Pb collisions

    Donghai Zhang🇨🇳 · Yeyin Zhao🇨🇳 · Luhua Qiu🇨🇳 · Mingmei Xu🇨🇳 · Yuanfang Wu🇨🇳

    Within the Color Glass Condensate (CGC) effective field theory, we investigate the long-range rapidity correlations in proton-lead (p-Pb) collisions at TeV. A distinctive correlation rebound is observed, where the correlation bounces after reaching a minimum at large rapidity gaps (). The rebound means a strong correlation appears at large rapidity gap. Studying the rebound structures can thus illuminate the formation of the ridge. We find that the rebound is most obvious when the transverse momenta of two measured particles are around 2 , and it moves to larger rapidity gaps at higher collision energies. Beyond that, the rapidity correlations in p-Pb collisions show asymmetry when the transverse momenta of two particles differ. The asymmetry, a unique signature of the asymmetric collisions, vanishes when the transverse momenta of two particles coincide. These findings provide direct insight into gluon saturation and quantum evolution.

    hep-phEPJA(2026)·0 citations
  8. 08*

    Nucleon and singly heavy baryons from the QCD instanton vacuum

    Yongwoo Choi🇰🇷 · Hyun-CHul Kim🇰🇷

    We construct an effective chiral theory for the nucleon, based on the low-energy effective QCD partition function from the QCD instanton vacuum. We fully consider the momentum-dependent dynamical quark mass whose value at the zero virtuality of the quark is determined by the gap equation from the instanton vacuum, MeV. The nucleon emerges as a state of valence quarks bound by the pion mean field, which was created self-consistently by the valence quarks. In the large Euclidean time, the classical nucleon mass is evaluated by minimizing the sum of the discrete-level energies and the Dirac-continuum energy: GeV. The pion mean-field solution turns out broader than the local chiral quark-soliton model. The zero-mode quantization furnishes the nucleon with proper quantum numbers such as the spin and isospin. We compute the moment of inertia fm by using the self-consistent mean-field solution, which yields the mass splitting MeV. In the same manner, singly heavy baryons can be described as a bound state of the valence quarks with the corresponding pion mean field, with the heavy quark regarded as a static color source. The mass splitting of the singly heavy baryons is obtained to be MeV, which are in good agreement with the experimental data. The effective chiral theory developed in the present work will provide a solid theoretical framework to investigate gluonic observables of both the light and singly heavy baryons.

    hep-phhep-latPRD(2025)·3 citations
  9. 09*

    Boosted dark matter from semi-annihilations in the galactic center

    Boris Betancourt Kamenetskaia🇩🇪 · Motoko Fujiwara🇩🇪 · Alejandro Ibarra🇩🇪 · Takashi Toma🇯🇵

    In some scenarios, the dark matter relic abundance is set by the semi-annihilation of two dark matter particles into one dark matter particle and one Standard Model particle. These semi-annihilations might still be occurring today in the Galactic Center at a significant rate, generating a flux of boosted dark matter particles. We investigate the possible signals of this flux component in direct detection and neutrino experiments for sub-GeV dark matter masses. We show that for typical values of the semi-annihilation cross-section, the sensitivity of current experiments to the spin-independent dark matter-proton scattering cross-section can be several orders of magnitude larger than current constraints from cosmic-ray boosted dark matter. We also argue that the upcoming DARWIN and DUNE experiments may probe scattering cross-sections as low as for masses between 30 MeV and 1 GeV.

    hep-phPLB(2025)·13 citations
  10. 10*

    Electroweak Scalar Effects Beyond Dimension-6 in SMEFT

    Nilabhra Adhikary🇮🇳 · Tisa Biswas🇮🇳 · Joydeep Chakrabortty🇮🇳 · Christoph Englert🇬🇧 · Michael Spannowsky🇬🇧

    The Standard Model Effective Field Theory (SMEFT) provides a robust framework for probing deviations in the couplings of Standard Model particles from their theoretical predictions. This framework relies on an expansion in higher-dimensional operators, often truncated at dimension-six. In this work, we compute the effective dimension-eight operators generated by integrating out heavy scalar fields at one-loop order in the Green's basis within two extended scalar sector models: the Two Higgs Doublet Model and the Complex Triplet Scalar Model. We also investigate the impact of heavy scalar fields on the fermion sector, deriving the fermionic effective operators up to dimension eight for these models, and detail how contributions can be mapped onto non-redundant bases. To assess the importance of higher-order contributions in the SMEFT expansion, we analyze the dimension-eight effects for electroweak precision observables at the next frontier of precision lepton machines such as GigaZ.

    hep-phhep-exhep-thPRD(2026)·10 citations
  11. 11*

    Flavor-Dependent Long-Range Neutrino Interactions in DUNE and T2HK: Synergy Breeds Power

    Masoom Singh🇮🇳 · Mauricio Bustamante🇩🇰 · Sanjib Kumar Agarwalla🇮🇳

    Discovering new neutrino interactions would provide evidence of physics beyond the Standard Model. We focus on flavor-dependent long-range neutrino interactions mediated by ultra-light mediators (masses below eV) from lepton-number gauge symmetries , , and . These interactions, sourced by electrons and neutrons in the Earth, Moon, Sun, Milky Way, and the local Universe, could modify neutrino oscillation probabilities. The upcoming long-baseline experiments, DUNE and T2HK, with their large statistics, reduced systematic uncertainties, and well-characterized neutrino beams, will probe these interactions. We forecast that, while individually DUNE and T2HK could constrain these long-range neutrino interactions, their combination lifts parameter degeneracies that weaken individual sensitivity and provides stronger constraints.

    hep-phhep-exphysics.ins-det0 citations
  12. 12*

    Muon-specific two-Higgs-doublet model for anomaly, -boson mass-shift, and Zee model

    I.A. Yafi🇮🇩

    We have investigated one type of 2HDM, the muon-specific two-Higgs-doublet model, as a solution to the muon () and CDF -boson mass anomaly. The additional Higgs boson couplings to muons are enhanced by , while the couplings to other fermions are suppressed by . One-loop corrections to the coupling induce a positive shift to the -boson mass, compatible with the CDF measurement. Fixing the charged Higgs mass of GeV, our results show that small values of () require a large mass splitting of GeV. The small mass splitting case GeV is also possible, provided large (). The oblique parameter lies in which corresponds to the mass-splitting between the charged and pseudoscalar Higgs in the range typically GeV. This leads to the constrained all Higgs boson masses that cannot be heavier than about 600 GeV. At the end, we also have studied the model in the context of the Zee model, radiative neutrino mass generation at one-loop level, by adding a singly-charged scalar to the model. The model results in the incompatible neutrino mass matrix with solar and KamLAND data.

    hep-ph0 citations
  13. 13*

    Inclusive photoproduction of vector quarkonium in ultra-peripheral collisions at the LHC

    Kate Lynch🇮🇪

    We explore the prospects of extending the LHC from a hadron-hadron to a photon-hadron collider and performing studies of inclusive quarkonium photoproduction. We perform an extrapolation from HERA data to predict the yields of photoproduced mesons in proton-lead collisions. Similarly, we perform an extrapolation from LHC data to model the large hadronic background. Inclusive photoproduction can be isolated from this background in the LHC detectors, namely, ALICE, ATLAS, CMS, and LHCb by imposing constraints on the hadronic activity in the main detector and in the far-forward region. This work focuses on the CMS detector.

    hep-phPoS(2024)·0 citations
  14. 14*

    Probing Type II Seesaw Leptogenesis Through Lepton Flavor Violation

    Chengcheng Han🇨🇳 · Yijun Han🇺🇸 · Sihui Huang🇨🇳 · Zhanhong Lei🇨🇳

    Lepton flavor violation (LFV) offers a powerful probe of physics beyond the Standard Model, particularly in models addressing neutrino masses and the baryon asymmetry of the universe. In this study, we investigate LFV processes within the framework of type II seesaw leptogenesis, where the Standard Model is extended by an triplet Higgs field. We focus on key LFV processes including , , and conversion in nuclei, deriving stringent constraints on the parameter space from current experimental data. We scan the 3 range of neutrino oscillation parameters and identify the most conservative bounds consistent with existing measurements. Our results reveal that the MEG experiment currently provides the strongest constraints in the normal ordering (NO) scenario, while the SINDRUM experiment offers comparable sensitivity in the inverted ordering (IO) case. Future experiments, such as MEG II, Mu3e, Mu2e, and COMET, are predicted to significantly improve the sensitivity, testing larger regions of the parameter space. This work underscores the crucial role of LFV experiments in probing type II seesaw leptogenesis, providing an avenue to explore the connections between neutrino mass generation, baryogenesis, and inflation at experimentally accessible energy scales.

    hep-ph2 citations
  15. 15*

    Nucleon tensor form factors at large

    Nam-Yong Ghim🇰🇷 · Ho-Yeon Won🇫🇷 · June-Young Kim🇺🇸 · Hyun-Chul Kim🇰🇷

    We investigate nucleon tensor form factors in the large- limit. In this picture, the nucleon emerges as a state of the valence quarks, which were bound by pion mean fields that were created by the presence of the valence quarks self-consistently. We find that the tensor charge () and the anomalous tensor magnetic moment () are dominated by valence quarks, while the tensor quadrupole moment () shows significant sea quark effects. We examine how these quantities vary as the average size of the pion mean field is changed, showing interpolation between non-relativistic quark and Skyrme limits. We also observe that and depend weakly on the pion mass. In contrast, exhibits strong enhancement near the chiral limit. The numerical results are in good agreement with available lattice QCD data and provide predictions for unmeasured quantities.

    hep-phPRD(2025)·5 citations
  16. 16*

    Quantum entanglement correlations in double quark PDFs

    Adrian Dumitru🇺🇸 · Eric Kolbusz🇺🇸

    Methods from Quantum Information Theory are used to scrutinize quantum correlations encoded in the two-quark density matrix over light-cone momentum fractions and . A non-perturbative three quark model light-cone wavefunction predicts significant non-classical correlations associated with the "entanglement negativity" measure for asymmetric and small quark momentum fractions. We perform one step of QCD scale evolution of the entire density matrix, not just its diagonal (dPDF), by computing collinearly divergent corrections due to the emission of a gluon. Finally, we present first qualitative numerical results for single-step scale evolution of quantum entanglement correlations in double quark PDFs. At a higher scale, the non-classical correlations manifest in the dPDF for nearly symmetric momentum fractions.

    hep-phquant-phPRD(2025)·10 citations
  17. 17*

    Deeply virtual -meson production near threshold

    Yoshitaka Hatta🇺🇸 · Henry T. Klest🇺🇸 · Kornelija Passek-K.🇭🇷 · Jakob Schoenleber🇺🇸

    We discuss exclusive -meson electroproduction off the proton near threshold within the GPD factorization framework. We propose the `threshold approximation' in which only the leading term of the conformal partial wave expansion of the meson production amplitudes is kept in both the quark and gluon exchange channels. We test the validity of this approximation to next-to-leading order in QCD and demonstrate the strong sensitivity of the cross section to the gluon and strangeness gravitational form factors. We also perform realistic event generator simulations both for Jefferson Lab and EIC kinematics and demonstrate the capabilities of future facilities for measuring near-threshold electroproduction.

    hep-phhep-exnucl-exPTEP(2025)·14 citations
  18. 18*

    How to Unfold Top Decays

    Luigi Favaro🇧🇪 · Roman Kogler🇩🇪 · Alexander Paasch🇩🇪 · Sofia Palacios Schweitzer🇩🇪 · Tilman Plehn🇩🇪 · Dennis Schwarz🇦🇹

    Using unfolded top-quark decay data we can measure the top quark mass, as well as search for unexpected kinematic effects. We present a new generative unfolding method for the two tasks and show how they both benefit from unbinned, high-dimensional unfolding. Unlike weight-based or iterative generative methods we include a targeted unbiasing with respect to the training data. This shows significant advantages over standard, iterative methods, in terms of applicability, flexibility and accuracy.

    hep-phhep-exSciPost Phys.Core(2025)·14 citations
  19. 19*

    Pulse and Polarization Structures in Axion-Converted X-rays from Pulsars

    JiJi Fan🇺🇸 · Lingfeng Li🇺🇸 · Chen Sun🇺🇸

    Neutron stars (NS's) with their strong magnetic fields and hot dense cores could be powerful probes of axions, a classic benchmark of feebly-coupled new particles, through abundant production of axions with the axion-nucleon coupling and subsequent conversion into X-rays due to the axion-photon coupling. In this article, we point out that the pulsation structures in both the intensity and polarization of X-rays from NS's could provide us additional information about axions and their couplings. We develop new analytical formalisms of pulsation-polarization structure applicable to a wide range of NS's in the axion scenario and argue that they hold in complicated astrophysical environments. As a case study, we apply our formalism to a representative X-ray Dim Isolated Neutron Star, RX J1856.6-3754, with an unexpected hard X-ray excess which might be axion-induced. We show with an updated fit that the axion explanation is compatible with both the intensity and pulsation data available, and combining the pulsation data does not shift the posterior by more than . Yet, the preferred parameter space is close to being excluded by other astrophysical constraints. With a 75% reduction of the uncertainties in the pulsation data, we could potentially draw a definite conclusion on the axion-induced X-rays at more than level.

    hep-phastro-ph.HEPRL(2025)·4 citations
  20. 20*

    Probing Standard Model and Beyond with Reactor CENS Data of CONUS+ experiment

    Ayan Chattaraj🇮🇳 · Anirban Majumdar🇮🇳 · Rahul Srivastava🇮🇳

    We explore the potential of reactor antineutrino-induced Coherent Elastic Neutrino-Nucleus Scattering (CENS) data from the CONUS+ experiment to investigate both the Standard Model (SM) and Beyond Standard Model (BSM) scenarios. Alongside CENS, Elastic Neutrino-Electron Scattering (EES) events are also included in our analysis, enabling more stringent constraints on new physics. Within the SM, we examine the weak mixing angle as a precision test of the electroweak sector. For BSM scenarios, we constrain the parameter space of light mediators arising from neutrino generalized interactions (NGI), while also setting limits on the electromagnetic properties of neutrinos, including their charge radius, millicharge, and magnetic moment.

    hep-phhep-exPLB(2025)·32 citations
  21. 21*

    Probing conventional and new physics at the ESS with coherent elastic neutrino-nucleus scattering

    Ayan Chattaraj🇮🇳 · Anirban Majumdar🇮🇳 · Dimitrios K. Papoulias🇪🇸 · Rahul Srivastava🇮🇳

    We explore the potential of the European Spallation Source (ESS) in probing physics within and beyond the Standard Model (SM), based on future measurements of coherent elastic neutrino-nucleus scattering (CENS). We consider two SM physics cases, namely the weak mixing angle and the nuclear radius. Regarding physics beyond the SM, we focus on neutrino generalized interactions (NGIs) and on various aspects of sterile neutrino and sterile neutral lepton phenomenology. For this, we explore the violation of lepton unitarity, active-sterile oscillations as well as interesting upscattering channels such as the sterile dipole portal and the production of sterile neutral leptons via NGIs. The projected ESS sensitivities are estimated by performing a statistical analysis considering the various CENS detectors and expected backgrounds. We find that the enhanced statistics achievable in view of the highly intense ESS neutrino beam, will offer a drastic improvement in the current constraints obtained from existing CENS measurements. Finally, we discuss how the ESS has the potential to provide the leading CENS-based constraints, complementing also further experimental probes and astrophysical observations.

    hep-phhep-exJHEP(2025)·16 citations
  22. 22*

    Derivation of Meson Masses in SU(3) and SU(4) Extended Linear-Sigma Model at Finite Temperature

    Abdel Nasser Tawfik (Egyptian Ctr. Theor. Phys., Cairo and Future U. in Egypt)🇪🇬 · Azar I. Ahmadov (Baku, Inst. Phys.)🇦🇿 · Alexandra Friesen (Dubna, JINR)🇷🇺 · Yuriy Kalinovsky (Dubna, JINR)🇷🇺 · Alexey Aparin (JINR, Dubna)🇷🇺 · Mahmoud Hanafy (Benha U)🇪🇬

    The present study focuses on the mesonic potential contributions to the Lagrangian of the extended linear-sigma model (eLSM) for scalar and pseudoscalar meson fields across various quark flavors. The present study focuses on the low-energy phenomenology associated with quantum chromodynamics (QCD), where mesons and their interactions serve as the pertinent degrees of freedom, rather than the fundamental constituents of quarks and gluons. Given that SU(4) configurations are completely based on SU(3) configurations, the possible relationships between meson states in SU(3) and those in SU(4) are explored at finite temperature. Meson states, which are defined by distinct chiral properties, are grouped according to their orbital angular momentum , parity , and charge conjugation . Consequently, this organization yields scalar mesons with quantum numbers , pseudoscalar mesons with , vector mesons with , and axialvector mesons with . We accomplished the derivation of analytical expressions for a total of seventeen noncharmed meson states and twenty-nine charmed meson states so that an analytical comparison of the noncharmed and charmed meson states at different temperatures becomes feasible and the contributions SU(3) and SU(4) configurations can be estimated, analytically.

    hep-phhep-thParticles(2025)·1 citation
  23. 23*

    Two Micron-Size Dark Dimensions

    Luis Anchordoqui🇺🇸 · Ignatios Antoniadis🇹🇭 · Dieter Lust🇩🇪

    Two extra dimensions of micron scale might simultaneously address the gauge and cosmological hierarchy problems. In our paper we examine various observational bounds in scenarios with one and two large extra dimensions, to see if they are compatible with the micron scale. We show that consistency with astrophysical observations requires that two extra dimensions of micron scale must not admit isometries, whereby conservation of the extra dimensional momentum is violated, allowing the massive Kaluza-Klein modes of the graviton to decay to other lighter graviton modes. However, to remain consistent with cosmological observations two extra dimensions of micron scale require a delicately fine tuning of the temperature at which the universe enters the radiation dominated epoch. Diving into this fine-tuned scenario we also show that primordial black holes with masses in the range could make all cosmological dark matter.

    hep-thhep-phFortsch.Phys.(2025)·34 citations
  24. 24*

    Probing axion-like particles through the gamma-ray production from cosmic-ray scattering in the Milky Way dark matter halo

    Victor P. Goncalves🇧🇷 · Emmanuel Moulin🇫🇷 · Igor Reis🇫🇷 · Aion Viana🇧🇷

    Axion-like particles (ALP) are promising candidates to comprise all the dark matter in the universe. We investigate the ALP couplings to photons and electrons via astrophysical measurements through the search for very-high-energy gamma rays arising from high-energy cosmic-ray scattering off ALP populating the halo of the Milky Way. We show that gamma-ray signals from ALP couplings to photons and electrons via inverse Primakoff and Compton processes respectively, can be probed by very-high-energy (100 GeV) gamma-ray ground-based observatories, providing an alternative and complementary avenue to probe ALP couplings in the eV mass range. Sensitivities of current and near-future ground-based gamma-ray observatories improves upon one order of magnitude the current constraints from gamma-ray satellite experiments for the ALP-photon couplings in the region of masses below 10 GeV. Their sensitivities reached on the ALP-electron couplings allow probing masses below 10 GeV, which are lower than the masses probed in gamma-ray satellite experiments.

    astro-ph.HEhep-phPRD(2025)·4 citations
  25. 25*

    Challenges and Opportunities of Gravitational Wave Searches above 10 kHz

    Nancy Aggarwal🇺🇸 · Odylio D. Aguiar🇧🇷 · Diego Blas🇪🇸 · Andreas Bauswein🇩🇪 · Giancarlo Cella🇮🇹 · Sebastian Clesse🇧🇪 · Adrian Michael Cruise🇬🇧 · Valerie Domcke🇨🇭 · Sebastian Ellis🇨🇭 · Daniel G. Figueroa🇪🇸 · Gabriele Franciolini🇨🇭 · Camilo Garcia-Cely🇪🇸 and 25 other authors

    The first direct measurement of gravitational waves by the LIGO and Virgo collaborations has opened up new avenues to explore our Universe. This white paper outlines the challenges and gains expected in gravitational-wave searches at frequencies above the LIGO/Virgo band. The scarcity of possible astrophysical sources in most of this frequency range provides a unique opportunity to discover physics beyond the Standard Model operating both in the early and late Universe, and we highlight some of the most promising of these sources. We review several detector concepts that have been proposed to take up this challenge, and compare their expected sensitivity with the signal strength predicted in various models. This report is the summary of a series of workshops on the topic of high-frequency gravitational wave detection, held in 2019 (ICTP, Trieste, Italy), 2021 (online) and 2023 (CERN, Geneva, Switzerland).

    gr-qcastro-ph.COastro-ph.IMhep-ex+1Living Rev.Rel.(2025)·138 citations
  26. 26*

    The role of finite value of strange quark mass and baryon number density on the stability and maximum mass of strange stars

    Pradip Kumar Chattopadhyay🇮🇳 · Debadri Bhattacharjee🇮🇳

    This study describes the impact of non-zero value of strange quark mass and number density of baryons on the structure, stability and maximum mass of strange stars. We derive an exact relativistic solution of the Einstein field equation using the Tolman-IV metric potential and modified MIT bag model EoS, , where is a function of bag constant , and baryon number density . Following CERN's findings, transition of phase from hadronic matter to Quark-Gluon Plasma (QGP) may occur at high densities in presence of favourable conditions. The standard MIT bag model, with a constant , fails to explain such transition properly. Introducing a finite and Wood-Saxon parametrisation for , dependent on baryon number density , provides a more realistic EoS to address such phase transition. Both and constrain the EoS, making it softer as increases. Solutions to the TOV equations reveal that for massless strange quarks, maximum mass is 2.01 and corresponding radius is 10.96 Km when . These values decrease to 1.99 and 1.96 , with corresponding radii of 10.88 Km and 10.69 Km for and respectively having same value. It is interesting to note that a corelation exists between and . The hadronic to quark matter transition occurs at higher values of , when increases such as and for and respectively. Beyond these values, the energy per baryon drops below , indicating a complete transition to quark matter. For physical analysis, we have considered which lies in the stable region with . The model provides a viable description of strange stars, satisfying all necessary physical requirements.

    gr-qchep-phnucl-thPhys.Dark Univ.(2025)·3 citations
  27. 27*

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

    Peng-Bo Chen🇨🇳 · Tie-Jun Gao🇨🇳

    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.COhep-phMod.Phys.Lett.A(2026)·4 citations
  28. 28*

    Constraint on Neutrino Statistics from Cosmological Data

    YiCheng Dai🇨🇳 · Wei Liao🇨🇳

    We investigate the impact of neutrino statistical property on cosmology and the constraints imposed by cosmological data on neutrino statistics. Cosmological data from probes such as Cosmic Microwave Background(CMB) radiation and Baryon Acoustic Oscillation(BAO) are used to constrain the statistical parameter of neutrino. This constraint is closely related to the degeneracy effects among neutrino statistical property, the sum of neutrino masses, and the Hubble constant. Our results show that purely bosonic neutrinos can be ruled out at 95\% confidence level and purely fermionic neutrinos are preferred.

    astro-ph.COhep-phJCAP(2025)·1 citation

* Reconstructed cohort: no mailing for this day survives in the archive. Papers are grouped by their submission times and arXiv's announcement cut-off, assuming announcement without delay; positions follow identifier order. Validated at ~91% exact-day agreement against the archived era.