PaperPanorama

HEP Phenomenology·hep-ph

Thu·Aug 27, 2026

34 papers27 primary·7 cross-listed

  1. 01

    Probing sub-GeV dark matter through dark matter-electron scattering in the superheated target of the InDEx experiment

    Utkarsh Patel🇮🇳 · Astitva Kathait🇮🇳 · Mala Das🇮🇳

    The Indian Dark Matter Search Experiment (InDEx) operates superheated droplet detectors with tetrafluoroethane () as the active target at the Jaduguda Underground Science Laboratory (JUSL), and has so far probed dark matter (DM) through nuclear recoils at operating temperatures at which the target is insensitive to electron recoils. In this work, we consider six operating temperatures, -- in steps of ; the corresponding Seitz thresholds range from down to . The ionization response of the target is computed in the isolated-atom approximation from Roothaan--Hartree--Fock wavefunctions. The projected confidence-level upper limits on the DM--electron scattering cross section are derived for a dark-photon-type mediator in both the heavy- and light-mediator limits, for a benchmark exposure of under the zero-background assumption. For the lowest threshold, at , the search probes DM masses down to , with the confidence-level limit reaching near for the contact interaction and near for the long-range interaction. The electron channel thus extends the reach of InDEx to sub-GeV DM masses, down to , providing a complementary probe of low-mass dark matter alongside its nuclear-recoil program and enhancing sensitivity to DM candidates coupling predominantly to leptons.

    hep-phhep-ex0 citations
  2. 02

    Low-Frequency Gravitational Bremsstrahlung and Memory in a Medium

    Diego Blas🇪🇸 · Silvia Gasparotto🇨🇭 · Hitoshi Murayama🇺🇸 · Jan Schütte-Engel🇺🇸 · Jann Zosso🇩🇰

    Gravitational radiation from the early Universe offers a powerful window into physics beyond the Standard Model (SM). In this paper, we investigate the low-frequency tail of gravitational radiation produced by the decay of massive particles. The energy spectrum in Minkowski space-time, , exhibits two distinct regimes: a flat bremsstrahlung/memory spectrum above a characteristic cutoff frequency and a suppressed quadratic frequency scaling below it. The typical rate of momentum change of the decay products determines the cutoff frequency. We calculate in two independent but equivalent ways: using Weinberg's soft graviton theorem and by solving the equations of motion. This further establishes the connection between Weinberg's soft graviton theorem and the gravitational memory formula, which we generalize to incorporate the effects of final-state scattering. We then compute the cosmological stochastic gravitational energy spectrum generated by many particle decays in the early Universe. We demonstrate that exhibits linear scaling with frequency above the cutoff frequency, transitioning to cubic scaling below it. Our findings reveal a suppression of the low-frequency signal compared to a naive linear extrapolation, with implications for detection prospects. Our results also reveal the connection between bremsstrahlung and memory in the context of cosmological stochastic gravitational energy spectra from the early Universe.

    hep-phgr-qchep-th1 citation
  3. 03

    Resonant Induced Orbital Electron Capture: Novel method for low-energy detection

    Evgeny Akhmedov🇩🇪 · Thierry Lasserre🇩🇪 · Leonardo Maturi🇩🇪

    We propose a novel approach to detecting low-energy electron antineutrinos based on the induced capture of orbital electrons by nuclei. This process is resonant, requiring the antineutrino energy to precisely match the energy difference between the final and initial atomic systems. For continuous-spectrum sources, the resonance conditions can be satisfied without fine-tuning, and the effective cross sections depend on the spectral intensity of the flux at the resonance rather than on the neutrino energy itself. This opens the possibility of detecting neutrinos of never previously probed low energies. We identify a number of candidate nuclides that allow transitions to excited states of the daughter nuclei corresponding to resonant energies below the inverse decay threshold of 1.8 MeV, and we consider a distinctive atomic-nuclear coincidence signature for background rejection. We discuss implications of the proposed method for detecting low-energy reactor neutrinos, geoneutrinos, and keV-scale thermal solar neutrinos. Applications to neutrino oscillation experiments and to reactor monitoring are also briefly discussed.

    hep-phhep-exnucl-exnucl-th0 citations
  4. 04

    NuGlass: A Fast and Interactive 3D Visualization of Neutrino Oscillations

    Chao Zhang🇺🇸

    Neutrino oscillation phenomenology is usually communicated through two-dimensional projections (probability curves, oscillograms, and bi-probability plots), each of which flattens a function of many parameters (baseline, energy, matter density, mass ordering, and the CP-violating phase) onto a single static figure. We present NuGlass, an open-source, web-based application that renders six complementary, fully interactive 3D views of the same underlying three-flavor evolution: an oscillogram surface, a bi-probability trajectory extruded along energy, a Bloch-sphere projection of the quantum flavor state, a matter-eigenstate phasor decomposition of the oscillation amplitude, a flavor-composition tube along the propagation baseline, and a worldline view that plots the probabilities against L/E and makes the matter-induced breaking of the vacuum degeneracy visible. An oscillation channel switcher, experiment presets, and customizable animation controls are provided. NuGlass can be used both as a research exploration tool and as a public-engagement exhibit. The application runs entirely client-side and is deployed at https://czczc.github.io/nuglass/ .

    hep-phhep-ex0 citations
  5. 05

    Energy-independent neutrino dephasing from an ultralight axion-like background

    B. A. Couto e Silva🇧🇷 · B. L. Sánchez-Vega🇧🇷

    We study neutrino oscillations in an ultralight axion-like particle (ALP) dark-matter background using a bottom-up derivative interaction for active neutrinos. For couplings diagonal in the neutrino mass basis, the leading relative phase is fixed by the difference of the ALP field between production and detection. More generally, an unresolved background multiplies each interference term by the characteristic function of this endpoint field difference. For a single fixed-amplitude coherent mode with uniformly sampled phase, the factor is . In the slow-flight and small-dephasing regimes, this result and a Gaussian virialized-halo treatment agree at quadratic order and produce a leading suppression. We identify the finite-exposure and coherence conditions under which the two statistical descriptions apply. As an application, we analytically map the energy-independent damping constraint derived from the first JUNO data onto the flavor benchmark . For a local ALP density of , the low-mass plateau gives . This number is a baseline-matched EFT recast of the reference damping analysis. No specific ultraviolet completion is assumed.

    hep-ph0 citations
  6. 06

    Impact of local and global event conditions in prompt charm hadron ratios

    Luis Carlos Cruz Peralta · Lizardo Valencia Palomo🇲🇽

    Fragmentation functions extracted from electron-proton and electron-positron collisions have shown not to be able to explain prompt charm hadron ratios in proton-proton collisions at the LHC energies. New models and event generator tunes have been developed to correctly describe the data from the ALICE experiment in proton-proton collisions at different center of mass energies. In this work Pythia 8.312 is used to implement two of those models: the SC-CR and BLC-CR + Ropes. Both show a good performance to reproduce the data at \sqrt{s}} = 13 TeV in different event conditions for the , , and ratios. For the particular case when the prompt charm hadrons are within jets, all the ratios show modifications relative to the case where the presence of jets is not required. A study in two different ranges of the relative transverse activity is also conducted. In this case only the baryon to meson ratios show a dependence on the underlying event activity. Results indicate that baryon and meson hadronisation are not affected in the same way by local effects or global event conditions

    hep-ph0 citations
  7. 07

    Statistical Inference of Scattering Parameters for Exotic Hadronic States in the Spectrum

    André Aimé Atangana Likéné🇨🇭 · P. Pradyun Hebbar🇨🇭 · Alexis Franck Rothen🇨🇭 · Ron Rayan Baatjes🇿🇦 · Saralees Nadarajah🇬🇧 · Patrice Ele Abiama🇨🇲 · Tobias Golling🇨🇭 · Germain Hubert Ben-Bolie🇨🇲

    We present a global two-channel Flatté amplitude analysis of the hidden-charm pentaquark candidates observed by the LHCb collaboration in the J/{\psi}p invariant-mass spectrum using the Run 1+2 dataset. We simultaneously fit the three pentaquark amplitudes to the full spectrum, including a polynomial background and complex coupling phases. The scattering length and effective range are extracted from the fitted amplitudes using the effective range expansion, with uncertainties determined through non-parametric bootstrap resampling. While real couplings yield scattering parameters compatible with a molecular interpretation, this conclusion becomes less robust when coupling phases are included. We further find that interference effects are important for the closely spaced Pc(4440)+ and Pc(4457)+ states, demonstrating the limitations of the incoherent-sum approximation.

    hep-ph0 citations
  8. 08

    Orbital angular momentum at small in the large limit

    G. Zardo Becker🇧🇷 · Yuri V. Kovchegov🇺🇸 · Ming Li🇺🇸 · Brandon Manley🇺🇸 · Andrey Tarasov🇺🇸

    We extend the small- analysis of the quark and gluon orbital angular momentum (OAM) distributions in the proton from the large- limit considered in our earlier works to the large- limit, in which the numbers of quark colors and flavors are large with their ratio held fixed. Working in the double-logarithmic approximation (DLA), summing powers of with the strong coupling and the proton's momentum fraction carried by a parton, we correct the small- operator expression for the quark OAM distribution suggested earlier in \cite{Kovchegov:2024wjs} and relate both the quark and gluon OAM distributions to the impact-parameter moments of the polarized dipole amplitudes. We derive the large- evolution equations for these moment amplitudes in the DLA; these include a new equation for the moment amplitude governing the quark OAM. We then solve these evolution equations numerically together with the helicity evolution for and . We find that, similar to the large- case, the OAM distributions share a common small- intercept with the helicity distributions, with the intercept for (cf.~\cite{Borden:2025ehe}): this result, along with for other values of that we studied, is smaller than the intercept of found in the large- limit. We also compute the ratios of the OAM distributions to the helicity parton distribution functions as , obtaining and at , with both ratios being nearly independent of .

    hep-ph0 citations
  9. 09

    Multi-messenger signal from QCD-Axion Ultracompact Minihalos

    Dorian W. P. Amaral🇪🇸 · Enrico D. Schiappacasse🇨🇱 · Karla Tapia-Rebolledo🇨🇱

    We explore the multimessenger signatures from ultracompact minihalos (UCMHs) seeded by stellar-mass primordial black holes (PBHs) and composed of QCD-axion dark matter. Using the secondary-infall framework, with relic-abundance and isocurvature conditions from a pre-inflationary Peccei-Quinn scenario, we numerically recover the characteristic halo profile and adopt a conservative constant-density core for the innermost region. We study the gravitational wave and electromagnetic signatures from neutron-star-PBH inspirals inside these dense structures. Dynamical friction produces a gravitational-wave dephasing relative to the vacuum binary, observable with LISA for primordial black holes with masses . Simultaneously, gravitationally focused axions can resonantly convert into photons in the neutron-star magnetosphere, producing a narrow-band radio signature. For nearby galactic neutron stars, the projected sensitivity of the Green Bank radio telescope GBT captures the QCD-axion band in the mass range. Gravitational waves therefore probe the presence and structure of the UCMH, while the radio signal probes the particle nature of its dark matter, making their joint observation a distinctive test of a mixed dark sector.

    hep-phastro-ph.COastro-ph.HE0 citations
  10. 10

    A Rotational Perturbative Correction to Democratic Neutrino Mixing and JUNO Compatibility

    Maibam Ricky Devi🇮🇳 · Swaraj Kumar Nanda🇮🇳 · Sudhanwa Patra🇮🇳

    In this work, we revamp the democratic mixing matrix (DM) by adding a perturbation term such that the mixing angles derived from it are compatible with the NuFIT 6.1 and recent findings from the Jiangmen Underground Neutrino Observatory (JUNO). To do this, we have incorporated perturbation term in the elements of the mixing matrix such that it does not lose its unitarity. Thus, the democratic mixing matrix, once ruled out by the experimental evidences from T2K, Double Chooz, and Daya Bay, can be modified with rotational perturbation in the (1,2), (1,3), and (2,3) sectors and additional real parameters added in each element of DM. Finally, we analyze the allowed and disallowed textures in light of the JUNO findings.

    hep-ph0 citations
  11. 11

    Particle production in -O collisions at LHC energy

    Chuan Li🇩🇪 · Georg Wolschin🇩🇪

    We compare our previous predictions for charged-hadron production in -O collisions at an energy of TeV as published in 2025 with preliminary Run 3 data from ALICE and adapt the model parameters to the data. Our three-source model comprises a gluon-gluon central source and two valence-quark soft-gluon fragmentation sources. We describe the initial conditions using color-glass-condensate states and calculate the time-dependent partial thermalization with a relativistic diffusion model. An inversion of the maximum production amplitude at larger pseudorapidities from backward to forward towards peripheral collisions is predicted.

    hep-ph0 citations
  12. 12

    Next-to-leading power endpoint DIS and PDF factorization

    M. Beneke🇩🇪 · M. Schnubel🇳🇱 · R. Szafron🇺🇸

    We study deep-inelastic scattering (DIS) in the threshold region beyond leading power in at leading twist. In the framework of position-space soft-collinear effective theory, we derive a factorization theorem for the off-diagonal parton-scattering channel, which starts at next-to-leading power (NLP). The hadronic tensor separates into an anti-hardcollinear contribution from power-suppressed currents and a soft-collinear contribution from subleading Lagrangian interactions, whose convolution integrals exhibit endpoint divergences. We show that these divergences are resolved by endpoint factorization relations, implying that the parton distribution function (PDF) near threshold becomes a two-scale object at NLP. We derive the factorization of the NLP gluon distribution at large in terms of hardcollinear matching coefficients and a subtracted soft-collinear function. We resum the leading logarithms of both from -dimensional factorization in the scheme and in an endpoint scheme based on refactorization, and establish the all-order relation between the two definitions of the PDF.

    hep-ph0 citations
  13. 13

    Pair production of in the SSM

    Yue-Tong Liu🇨🇳 · Shu-Min Zhao🇨🇳 · Meng-Zi Cao🇨🇳 · Shuang Di🇨🇳 · Rong-Zhi Sun🇨🇳 · Xing-Xing Dong🇨🇳

    Higgs pair production provides an important probe of the Higgs self-interaction and the Higgs potential structure. We study the lightest neutral Higgs pair production process via gluon fusion at the 14 TeV LHC, in the supersymmetric standard model. As a extension of the minimal supersymmetric standard model (MSSM), this model introduces new superfields that bring additional one-loop contributions to the production amplitude. We analyze the parameter dependence of the cross section numerically and present contour distributions in two-dimensional parameter planes. The results indicate that the gauge couplings and are the most sensitive parameters, and the model yields sizable new physics corrections under current experimental constraints. This work helps to understand Higgs physics in the SSM and guides new physics searches at the high-luminosity LHC.

    hep-ph0 citations
  14. 14

    Rare Exclusive Top Decays t , b M and Vector-Meson Helicity

    M.Ahmadi🇮🇷 · M.Monemzadeh🇮🇷 · N. Tazimi🇮🇷

    We present a leading-order study of the rare exclusive decays , where denotes a pseudoscalar or vector meson. Starting from the tree-level transition and using a factorization approximation, we derive compact expressions for the amplitudes and partial widths in which the long-distance QCD dynamics is encoded in the meson decay constants . We provide numerical branching-ratio predictions for representative modes such as , , , and , finding --. For vector final states, we derive helicity amplitudes and Standard-Model polarization fractions, and we outline the sensitivity of these observables to anomalous chiral couplings in the limit . Our results provide an updated Standard Model (SM) baseline for rare exclusive top-quark decays and a starting point for EFT interpretations of non-standard charged-current interactions.

    hep-phhep-th0 citations
  15. 15

    Quantum-Kinetic Leptogenesis and Gravitational Waves from Seesaw-Assisted Domain-Wall Dynamics

    Gayatri Ghosh🇮🇳

    We investigate the connection between resonant leptogenesis and a primordial stochastic gravitational-wave background in a minimal two-right-handed-neutrino type-I seesaw with a real singlet scalar. The scalar sector admits a -symmetric tree-level potential, while the tiny right-handed-neutrino coupling to the -odd scalar generates a radiative vacuum-energy bias that causes the domain-wall network to annihilate. For quasi-degenerate heavy neutrinos, we describe the heavy-neutrino system with a density-matrix kinetic framework and use the ratio as an organizing variable for the separated, resonant and coherent regimes. The heavy-neutrino parameters that control the physical mass splitting also enter the radiatively generated domain-wall bias, providing a model-dependent link between the quantum-kinetic baryon asymmetry and the gravitational-wave peak frequency and amplitude. We emphasize that the gravitational- wave signal is not a direct measurement of an individual low-energy neutrino parameter; rather, it provides a model-dependent consistency relation among neutrino data, resonant leptogenesis, domain-wall annihilation and the stochastic gravitational-wave background.

    hep-ph0 citations
  16. 16

    A Comprehensive Analysis of the R2HDM Vacuum Evolution and the Induced GW and Collider Phenomenology

    Lisa Biermann🇨🇭 · Christoph Borschensky🇩🇪 · Rafael Boto🇩🇪 · Margarete Mühlleitner🇩🇪 · Rui Santos🇵🇹 · Joao Viana🇵🇹

    Extended Higgs sectors beyond the Standard Model (BSM) allow to dynamically generate the observed baryon asymmetry of the Universe through electroweak baryogenesis and thereby solve one of the most prominent open problems of the SM. The strong first-order phase transitions (PTs), required to preserve the generated asymmetry in the electroweak vacuum, source gravitational waves (GW) that can be tested at future experiments like LISA. Gravitational waves hence provide the exciting possibility to probe BSM physics through cosmological processes. In order to be able to eventually pin down the specific underlying physics, a good understanding of the evolution of the vacuum of the model under investigation is indispensable as well as of the uncertainties that are involved in the derivation of the GW spectrum. We use our code BSMPTv3 that allows to reliably derive the finite temperature vacuum structure of extended Higgs sectors with multiple vacuum directions and calculates the GW spectrum of the found (multiple) strong first-order PTs, and we apply it to the real, i.e. CP-conserving, 2-Higgs-Doublet Model. Taking into account all relevant theoretical and experimental constraints, we perform a thorough analysis of its vacuum evolution, the related collider and GW phenomenology and complement it by an uncertainty discussion.

    hep-ph0 citations
  17. 17

    Impact of model-independent higher-order contributions to the Higgs-boson self-couplings

    Johannes Braathen🇩🇪 · Wrishik Naskar🇩🇪 · Georg Weiglein🇩🇪

    We point out the relevance of a new class of model-independent higher-order contributions to the trilinear and quartic self-couplings of the detected Higgs boson giving rise to potentially large effects of physics beyond the Standard Model (SM). It consists of SM-like diagrams with insertions of loop-corrected values for the trilinear and quartic Higgs self-couplings. While up to now predictions in specific models of physics beyond the SM were only evaluated up to the one-loop or, in some cases, up to the two-loop level, we demonstrate how potentially large higher-order contributions can consistently be incorporated into existing one-loop or two-loop predictions. These model-independent higher-order contributions therefore improve the existing predictions that were obtained in specific models. Confronting our predictions with the relevant experimental results and theoretical constraints, we perform a simultaneous determination of the trilinear and quartic Higgs-boson self-couplings. We show that the new set of model-independent higher-order contributions can induce sizeable shifts in the inferred bounds on the trilinear and quartic Higgs self-couplings. For example, including the new higher-order corrections can shift the upper bound on the trilinear self-coupling modifier entering the theoretical predictions to from the experimental limit of . Our results demonstrate that incorporating these higher-order contributions is essential for a reliable interpretation of present and future measurements. We further provide a public tool that implements these effects and enables direct comparison with experimental limits.

    hep-ph1 citation
  18. 18

    Odderon in the diffractive dip region

    E.G.S. Luna🇧🇷 · M.G. Ryskin🇷🇺 · V.A. Khoze🇬🇧

    We examine possible -odd effects in elastic proton-proton and proton-antiproton scattering in the diffractive dip region. Collider data with GeV are fitted for , using a simple Regge-inspired parametrization of effective -even and -odd amplitudes. The relative phases are not left free, but are fixed by the signature factors of the corresponding even and odd contributions. In this way, the real and imaginary parts of each term are linked by crossing. The -even amplitude is first described by three effective Pomeron-like terms. The -odd sector is then tested with several one-term Odderon-like forms. We find that the fits do not require a stable nonzero -odd term: the odd contribution is either compatible with zero or becomes weakly constrained when we allow extra freedom. We then test whether the conclusion is changed by adding either a fourth Pomeron-like term or a second Odderon-like term. The improvement obtained with the fourth Pomeron-like term is mainly -even, while the second Odderon-like term is not resolved as an independent contribution. These results provide a complementary test of recent determinations of the Odderon amplitude based on scaling and analyticity.

    hep-phhep-exhep-th0 citations
  19. 19

    Low- parton densities accounting for absorptive effects and exclusive and data from the LHC

    V. Bertone🇫🇷 · C. A. Flett🇫🇷 · A. D. Martin🇬🇧 · M. G. Ryskin🇷🇺

    Based on the combined Deep-Inelastic Scattering (DIS) data from HERA and the exclusive and cross sections measured at the LHC, we investigate the role of absorptive corrections on the low- behaviour of parton distribution functions (PDFs) at low and moderate scales. Using , we study the impact of these data and of non-linear evolution on PDFs at next-to-leading order (NLO) and through the NNLO method introduced in a previous work. Finally, we determine the effective size of proton hot spots within this framework and discuss the implications of our results for future global PDF determinations.

    hep-phhep-ex0 citations
  20. 20

    Deeply Inelastic Scattering Revisited

    Felix Hekhorn🇫🇮

    Due to its conceptual simplicity, Deeply Inelastic Scattering (DIS) often serves as a textbook example for Quantum Chromo Dynamics (QCD) and partonic structure of nucleons. However, it is this supposed simplicity, which makes DIS an ideal case for discussing many additional effects and corrections. In these lectures we discuss DIS within the domain of perturbative QCD covering a range of topics ranging from mathematical problems to kinematical corrections, and to practical challenges when attempting to interpret experimental measurements. Although here we focus on the exemplary case of DIS, the discussed topcis are relevant to a larger class of processes. We also give an overview of existing and future DIS measurements, and discuss their implementation into modern extractions of parton distribution functions (PDFs) which quantify the partonic structure of nucleons. The discussed features are all implemented in the open source code Yadism, which has been used for PDF extractions from a wide range of the available world data on fully inclusive DIS.

    hep-ph0 citations
  21. 21

    How elastic unitarity governs resonance peaks and residue phases

    S. Ceci🇭🇷 · R. Omerović🇧🇦 · H. Osmanović🇧🇦 · M. Uroić🇭🇷 · B. Zauner🇭🇷

    Imposing elastic unitarity on resonant amplitudes yields a geometric rule connecting the reaction threshold, S-matrix pole, and Breit-Wigner peak. Validated across six orders of magnitude in energy, from to the Higgs boson, this rule predicts currently unknown residue phases: for , for , and for . By inverting this formalism, we determine the pole from its empirical peak to be MeV, with a phase.

    hep-ph0 citations
  22. 22

    Mixing effects in radiative decays of heavy-strange axial-vector mesons within light-cone QCD sum rules

    T. M. Aliev🇹🇷 · S. Bilmis🇹🇷 · M. Savci🇹🇷

    We calculate the radiative decay widths of , , , and within light-cone QCD sum rules, taking into account the mixing between the and configurations. In the bottom-strange sector, we consider the experimentally established together with the theoretically expected lower state, denoted . We obtain keV, keV, keV, and keV. The decay width is substantially larger than that of . This difference originates from - mixing: the two basis-current contributions interfere constructively for the lower state and destructively for the higher state. In the bottom-strange sector, the two widths are comparable within their uncertainties, although the higher state still exhibits destructive interference. These results show that the radiative decay pattern of strange heavy axial-vector mesons is sensitive to the mixing of the two spin configurations.

    hep-phhep-exhep-lat0 citations
  23. 23

    Imaginary Rotation Breaks Charge Conjugation in Hot QCD

    Rin Takada🇯🇵

    Starting from the identity on the color-singlet physical state space, we derive a density-operator identity that ties imaginary rotation to an imaginary quark chemical potential, . Hence imaginarily rotating QCD at is mapped exactly onto the Roberge-Weiss (RW) point , where charge conjugation is spontaneously broken above the RW endpoint---a conclusion independent of any model or approximation. Minimizing the one-loop effective potential on the rotation axis, we obtain analytically, for three massless flavors, the second-order transition at , and a subsequent first-order transition at . At smaller , a continuous degeneracy of the massless one-loop approximation leaves the realization of undecided; a finite strange-quark mass lifts it. We also state how the exact relations and the on-axis predictions can be tested in lattice QCD.

    hep-phhep-th0 citations
  24. 24

    Robust Finite-Momentum Instabilities in Dense Matter

    André G. da Silva🇧🇷 · Ricardo L. S. Farias🇧🇷 · Theo Motta🇧🇷 · William R. Tavares🇵🇹

    The predicted extent of inhomogeneous chiral phases in effective models of quantum chromodynamics is notoriously sensitive to ultraviolet regularization. We show that this sensitivity is largely artificial. In the two-flavor Nambu--Jona-Lasinio model, conventional implementations of three-dimensional cutoff, Pauli--Villars, and proper-time regularization produce strongly different finite-momentum instability regions. Once ultraviolet regulators are restricted to genuinely divergent vacuum contributions, however, all three prescriptions yield nearly identical stability diagrams. Both the onset of the moat regime and the subsequent finite-momentum instability become quantitatively robust. The apparent scheme dependence originates from regulating ultraviolet-finite medium contributions associated with the Fermi-surface response. Our results identify spatially modulated chiral correlations as a genuine property of the dense medium rather than an artifact of the ultraviolet prescription.

    hep-phhep-lathep-thnucl-th0 citations
  25. 25

    Jet Quenching Meets Gluon Saturation

    Paul Caucal🇫🇷 · Kevin Eisenberg🇺🇸 · Yacine Mehtar-Tani🇺🇸

    We present a theoretical framework for jet fragmentation in heavy-ion collisions based on the resummation of large energy logarithms. Exploiting the hierarchy of scales characteristic of jet quenching, we show that the jet function obeys the Banfi-Marchesini-Smye evolution equation, with medium-induced energy loss and color decoherence encoded in the initial condition. This structure reveals a close correspondence with saturation physics. In particular, the coherence angle emerges as the analog of the saturation scale and exhibits the same asymptotic scaling behavior under nonlinear evolution. As a proof of principle, we compute the jet nuclear modification factor to quantify the interplay between vacuum radiation and medium-induced color decoherence. Our framework provides a unified perturbative description of vacuum-like parton showers, medium-induced radiation, and color-coherence effects, paving the way for precision studies of jet quenching at RHIC and the LHC.

    hep-phnucl-th2 citations
  26. 26

    Color Coherence and the Soft Structure of QCD Jets in Vacuum and the QGP

    Paul Caucal🇫🇷 · Yacine Mehtar-Tani🇺🇸

    We formulate a theoretical framework for the evolution of QCD jets in vacuum and in the quark--gluon plasma through the resummation of large energy logarithms. Exploiting the strong hierarchy between the hard scale of the jet and the energy scale associated with jet energy loss, we show that jet observables near threshold can be formulated in terms of Wilson-line correlators obeying Banfi-Marchesini-Smye (BMS) evolution. In this description, soft radiation resolves the internal color structure of the jet, leading to a hierarchy of non-linear evolution equations that govern the evolution of color coherence and the emergence of decoherent energy loss. For jets propagating through a QCD medium, we demonstrate that medium-induced interactions modify the boundary conditions of the evolution while leaving its ultraviolet structure unchanged. This separation of scales provides a unified description of vacuum-like radiation, medium-induced energy loss, and color coherence. In the large- limit, the resulting evolution is closely related to the Balitsky-Kovchegov equation of high-energy QCD, allowing concepts from saturation physics to be applied to jet quenching. In particular, the medium coherence angle plays a role analogous to the saturation scale and acquires the same asymptotic scaling behavior under evolution. Our framework establishes a perturbative foundation for the study of color coherence effects in jet quenching and provides a unified picture of soft jet evolution in vacuum and in dense QCD matter.

    hep-phnucl-th2 citations
  27. 27

    Strong CP and the PMNS Phase in Dirac Left-Right Symmetry

    Vladimir Tello🇭🇷

    Left--right symmetric theories with generalized parity restrict the bare QCD angle to a CP-conserving value and relate the physical strong-CP phase \(\bar\theta\) to a CP-odd parity-breaking parameter \(\eps\). We show that, in the Dirac-neutrino realization, imposing a sectorial reality condition on the Dirac lepton Yukawa matrices turns observable leptonic CP violation from an independent input into a branch-dependent prediction. Parity reconstructs the right-handed leptonic mixing matrix, whereas leptonic reality requires it to be rephasing-equivalent to the complex conjugate of the left-handed one. For generic three-generation Yukawas, compatibility is equivalent to the vanishing of a single Jarlskog-type CP-odd invariant. In the physical Dirac hierarchy, for fixed oscillation data, mass ordering, and discrete leptonic branch, compatibility determines the PMNS Jarlskog invariant as a function of the lightest neutrino mass and \(\eps\). We derive its leading analytic behavior and obtain the nonlinear compatibility branches numerically. In compressed mixed-sign Dirac-neutrino spectra, small signed mass sums can amplify a tiny parity deformation into order-one values of the normalized PMNS Jarlskog invariant, including maximal CP violation. The corresponding quark reconstruction independently provides a calculable, branch-dependent conversion between \(\eps\) and \(\bar\theta\). Together, the leptonic and quark relations define a family of correlations among leptonic CP violation, the absolute neutrino mass scale, and strong CP.

    hep-ph0 citations
  28. 28

    Hubble tension: the shape wall

    Miguel A. Sabogal🇮🇹 · Luis A. Escamilla🇹🇷 · Davide Pedrotti🇮🇹 · Edvig Selimaj🇮🇹 · Sunny Vagnozzi🇮🇹

    The standard "no-go theorem" against late-time solutions to the Hubble tension is essentially a normalization wall, since Baryon Acoustic Oscillation (BAO) measurements constrain the product , with the sound horizon at baryon drag. However, late-time solutions (which keep fixed) are tightly constrained not only by the BAO normalization , but also by the shape of the expansion history, i.e. the dimensionless expansion rate . We show that, if and the acoustic angular scale are fixed, an increase in needs to be matched by an equal fractional increase in the dimensionless distance integral : . We use this to quantify the "shape wall" set by relative distance constraints on , which we reconstruct nonparametrically, using Gaussian Processes and the latest unanchored Type Ia Supernovae (SNeIa) and BAO data. In our most conservative analysis using PantheonPlus SNeIa and DESI DR2 BAO data, we find a maximum fractional increase in of , falling well short of the required to solve the tension. This shape wall holds even in the presence of early-time new physics, and limits the maximum increase in which can be contributed by late-time modifications to at fixed . Therefore, late-time modifications, whether invoked alone or alongside early-time new physics, face not only the well-known normalization wall, but also a stringent percent-level shape wall.

    astro-ph.COgr-qchep-phhep-th3 citations
  29. 29

    Time-Dependent Tunneling in the Thin-Barrier Limit

    Tanmay Vachaspati🇺🇸 · Frank Wilczek🇺🇸 · Zara Yu

    The usual WKB analysis for quantum tunneling applies when the tunneling action is large, as it is for tall, wide potential barriers. In contrast we analyze tunneling when the action is small, as it is for tunneling across a tall, thin barrier. We develop a perturbative analysis where the control parameter is the inverse of the area under the potential barrier and apply our technique to several examples in dimensions. In resonant situations for bound particles we find that the tunneling probability grows with time as , while in non-resonant situations it grows linearly with time. We evaluate not only the tunneling probability but also the time-dependent tunneling wavefunction for a particle that escapes to infinity, {\it i.e.} from a quasi-bound state to the continuum.

    quant-phcond-mat.otherhep-phhep-th0 citations
  30. 30

    What would it take for dark matter to be literally warm?

    Katelin Schutz🇨🇦

    Warm dark matter (WDM) has served as a valuable benchmark for constraining small-scale structure in the past decades. In this note, I examine what it would take for dark matter to be warm in the literal sense assumed by that benchmark, i.e., a thermal relic that decoupled while relativistic. Satisfying current constraints on the WDM mass, which approach the 10 keV scale, requires one of three possibilities. One possibility is that there were relativistic degrees of freedom in the thermal bath at the time of decoupling, which is far beyond what is available in the Standard Model or plausible extensions of it. An alternative is that there was a period of early matter domination whose entropy injection diluted the relic density. However, in this scenario, the perturbations would have evolved through an expansion history that was different from the radiation-dominated one assumed in deriving WDM transfer functions. The third possibility is a dark sector that was never in thermal contact with the Standard Model and was simply born colder via asymmetric reheating. All of these possibilities rely on strong coincidences, where physics that has nothing to do with WDM happens to provide the exact initial conditions assumed in a WDM cosmology. Meanwhile, WDM is often used as a proxy for models with self-consistent thermal histories that generically predict the suppression of structure formation on small scales in a way that is both quantitatively and qualitatively different from WDM. I therefore advocate for a transition to more expressive parameterizations and simulation-based methods in order to extract more useful information from the wealth of upcoming data.

    astro-ph.COhep-ph0 citations
  31. 31

    Slowly Rolling on a Quantum Correction

    Ido Ben-Dayan🇮🇱 · Ayushi Srivastava🇮🇱 · Amresh Verma🇮🇱

    Recent advances in cosmological measurements such as DESI and ACT may indicate an increase in the preferred value of the spectral tilt such that it disfavors rather popular models such as the Higgs or Starobinski inflation models. We argue that it actually means that the data is now sensitive enough to quantum corrections beyond simple tree-level models. Resurrecting the old theme of Coleman-Weinberg effective potential, we analyze the predictions of such models, as well as likelihood analysis, leading to a more established and interesting predictive framework.

    astro-ph.COgr-qchep-phhep-th1 citation
  32. 32

    ADoNIS: A Differentiable generatOr of Neutrino Interaction Samples

    César Jesús-Valls🇨🇭

    Neutrino interaction generators are central to precision oscillation analyses, but conventional implementations do not directly provide derivatives of their predictions with respect to physics parameters, leaving analyses to obtain this dependence through reweighting, finite differences or external response models. We present ADoNIS, a fully differentiable neutrino interaction event generator that makes event reweighting and its gradients directly available, propagating exact derivatives through the nuclear ground state, hard-scattering amplitudes and stochastic intranuclear cascade. Following the physics choices of ACHILLES, we demonstrate agreement with its predictions across neutrino, electron and hadron probes, showing that differentiability is achieved without loss of physical fidelity. We then show how the resulting Jacobian exposes which measurements and regions of phase space constrain each parameter and how different probes break degeneracies, providing a quantitative tool for fit design, model tuning, measurement design and experiment design. The same differentiable predictions can be used directly in frequentist and Bayesian inference and carried through detector response to reconstructed observables for unfolding, while also yielding computational gains. In sum, ADoNIS provides a practical recipe for constructing differentiable neutrino event generators, applicable beyond the particular physics models implemented here, and this paper demonstrates their use across a wide range of tasks relevant to both theory and experiment.

    hep-exhep-ph0 citations
  33. 33

    Enhancing 10 TeV -collider luminosity through scattering-laser wavelength selection in the presence of prolific electron-positron pair production

    S. S. Bulanov🇺🇸 · T. Barklow🇺🇸 · C. Benedetti · A. Formenti · S. Gessner · R. Lehe · A. Rastogi🇺🇸 · S. Pagan Griso🇺🇸 · C. B. Schroeder · A. Schwartzman🇺🇸 · J. Osterhoff

    A -collider capable of reaching the 10 TeV parton-center-of-momentum (pCM) frontier of particle physics may enable the study of phenomena beyond the Standard Model. Based on compact linear wakefield accelerator technology, such a collider could be realized by Compton scattering multi-TeV lepton beams off moderate-intensity laser pulses close to the collider interaction point, producing the required -photons. It is shown that, for a wide range of scattering-laser wavelengths, -collisions at the interaction point can meet the luminosity requirements for novel particle physics studies, even in the presence of the prolific electron-positron pair production that accompanies the interaction of the scattering laser with the multi-TeV lepton beam. Notably, this pair production imposes a natural limit on the maximum achievable photon luminosity. Accounting for this limit and for the angular divergence of the Compton photons yields an enhanced -collider luminosity for 250 nm and 1.25 nm scattering lasers. Moreover, the secondary pairs can themselves be exploited in physics studies, since their luminosity is high enough to produce heavy particles at rates needed for discoveries well beyond the reach of existing colliders.

    physics.acc-phhep-ph0 citations
  34. 34

    Massive Ghost Confinement, Dipole Equation and Multipole States in Quadratic Gravity

    Ichiro Oda🇯🇵

    We investigate the problem of confinement of massive ghost, which violates the unitarity of the physical S-matrix, in quadratic gravity on the basis of a manifestly covariant and local canonical operator formalism. First, we reconsider the manifestly covariant quantization of quadratic gravity in the de Donder gauge (the harmonic gauge) from the viewpoint of dipole fields. Next, we also reconsider a possible mechanism of confinement of the massive ghost and derive an effective Lagrangian for asymptotic fields of a BRST quartet where the asymptotic field corresponding to the massive ghost is found to obey a dipole field equation as in the Froissart model, which is a characteristic feature in our formalism. To understand quantum aspects of our theory, we perform a manifestly covariant quantization of the effective Lagrangian in two different ways based on the three-dimensional Fourier transform and the four-dimensional Fourier transform, and derive the same result that the quantum Fock space is spanned by multipole states.

    hep-thgr-qchep-ph0 citations

Affiliations

first authorsco-authorsvia INSPIRE