PaperPanorama

HEP Phenomenology·hep-ph

Thu·Jul 24, 2025

38 papers23 primary·15 cross-listed·reconstructed*

  1. 01*

    Beyond the Veil: Charting WIMP Territories at the Neutrino Floor

    Giorgio Arcadi🇮🇹 · Manfred Lindner🇩🇪 · Stefano Profumo🇺🇸

    We establish comprehensive theoretical benchmarks for Weakly Interacting Massive Particles (WIMPs) accessible to ultimate direct detection experiments, focusing on the challenging parameter space between current experimental limits and the irreducible neutrino background. We systematically examine both thermal freeze-out and freeze-in production mechanisms across a range of simplified dark matter models, including s-channel scalar and vector portals, t-channel mediator scenarios, and electroweakly interacting multiplets. For thermal relics, we identify parameter regions where suppressed direct detection cross-sections naturally arise through momentum-dependent interactions and blind-spot configurations, while maintaining the correct relic abundance. We extensively investigate freeze-in scenarios, demonstrating how feebly interacting massive particles (FIMPs) in portal models can populate experimentally accessible parameter space despite their ultra-weak couplings. Additionally, we explore how non-standard cosmological histories including early matter domination and fast-expanding Universe scenarios can dramatically alter the relationship between relic density and detection prospects, opening new avenues for discovery. Our analysis provides a roadmap for next-generation experiments approaching the neutrino floor, highlighting complementary detection strategies and identifying the most promising theoretical targets for ultimate sensitivity dark matter searches. These benchmarks establish the theoretical foundation for the final push toward comprehensive coverage of well-motivated WIMP parameter space.

    hep-phPRD(2026)·5 citations
  2. 02*

    Constraints on Axion Dark Matter by Spin-Dependent Macroscopic Force

    Dongyi Yang🇨🇳 · Chenxi Sun🇨🇳 · Jianwei Zhang🇨🇳

    Axion-like particles (ALPs) are hypothetical particles that serve as promising candidates for cold dark matter. Portals like inelastic axion scattering and axion propagated force have been employed to search for the upper limit of the ALPs' coupling with standard model particles. Other methods, like the axion-fermion interaction in the CASPEr experiment, integrate the dark matter motion into the measurement. We suggest a new method for detecting dark matter axions based on axionelectron elastic scattering. In the pseudoscalar axion model, this interaction can be seen as an effective magnetic field, so high-sensitivity atomic magnetometers can be utilized to measure this interaction. The scattering cross section of this process is significantly amplified by the high number density and occupation number of axion dark matter. The upper limit of the electron-axion coupling coefficient obtained from this process can reach two orders of magnitude higher than previous results at low axion mass, and will exceed the astrophysics limits by using a developing magnetometer. This scattering process also provides an efficient way to detect local structures of dark matter.

    hep-phPRD(2025)·1 citation
  3. 03*

    Threshold cusp structures in multi-channel scattering

    Katsuyoshi Sone🇯🇵 · Tetsuo Hyodo🇯🇵

    We study the behavior of the cusp structures focusing on the isospin symmetry breaking effects. The properties of the exotic hadrons are reflected in the shape of the cusp structures. In realistic hadron scatterings, the threshold energies of the isospin partners appear within a small energy region. For a detailed analysis of such systems, it is essential to study the behavior of the cusp structures arising at two closely spaced thresholds. In this work, we introduce a convenient formulation of the scattering amplitude and demonstrate that the cusp structures at two nearby thresholds are related through the isospin symmetry.

    hep-phnucl-thPoS(2026)·3 citations
  4. 04*

    Convergence in charmonium structure: light-front wave functions from basis light-front quantization and Dyson-Schwinger equations

    Xianghui Cao🇨🇳 · Yang Li🇨🇳 · Chao Shi🇨🇳 · James P. Vary🇺🇸 · Qun Wang🇨🇳

    We present a systematic comparison of charmonium light-front wave functions obtained through two complementary non-perturbative approaches: Basis Light-Front Quantization (BLFQ) and Dyson-Schwinger equations (DSE). Key observables include the charge form factor, gravitational form factors, light-cone distribution amplitudes, decay constants, and two-photon transition form factors. Despite their distinct theoretical foundations and model parameters, the predictions from BLFQ and DSE exhibit remarkable agreement across all observables. This convergence validates both frameworks for studying charmonium structure and highlights the complementary strengths of Hamiltonian-based (BLFQ) and Lagrangian-based (DSE) methods in addressing non-perturbative QCD.

    hep-phhep-thnucl-thPRD(2026)·1 citation
  5. 05*

    Anisotropic flow coefficients for charged hadrons in collisions at TeV using AMPT

    Jagbir Singh🇨🇱 · Muhammad Usman Ashraf🇺🇸 · Ahsan Mehmood Khan · Aditya Rana🇮🇳 · Sonia Kabana🇨🇱

    In this article, we report on the predictions of , and for charged hadrons in O+O collisions at ~TeV using both AMPT-default and AMPT-String Melting. These predictions are compared with the existing published data of , , and collisions at LHC energies. The transverse momentum () dependence of is also investigated for different centrality classes. collisions provide a unique opportunity to bridge the gap between small and large collision systems, offering critical insight into the onset of collective behavior in QCD matter.

    hep-ph1 citation
  6. 06*

    Numerical study on the gauge symmetry of electroweak amplitudes

    Wang-Fa Li🇨🇳 · Junmou Chen🇨🇳 · Qian-Jiu Wang🇨🇳 · Zhao-Huan Yu🇨🇳

    Electroweak (EW) amplitudes in the gauge-Goldstone five-component formalism have a distinctive property: gauge symmetry is imprinted in the amplitudes, manifested as the massive Ward identity (MWI) . In this study, we used the HELAS package to numerically study gauge symmetry in EW amplitudes. First, we directly tested gauge symmetry by examining the MWI of amplitudes. Second, we modified the couplings within a vertex and among vertices to check if and how the MWI changes. Third, we tested gauge symmetry by considering the couplings modified by operators from the standard model effective field theory (SMEFT). Similar to the standard model, there are relations between different couplings that are protected by gauge symmetry. We observed that, if we modify the couplings to deviate from the relations, the MWI is violated. In contrast, the MWI is restored when the relations between couplings reduce to those in the SMEFT.

    hep-phCPC(2026)·2 citations
  7. 07*

    Dihadron fragmentation framework for near-side energy-energy correlators

    Zhong-Bo Kang🇺🇸 · Andreas Metz🇺🇸 · Daniel Pitonyak🇺🇸 · Congyue Zhang🇺🇸

    We establish an approach to analyze the free hadron and transition (nonperturbative) regions of near-side energy-energy correlators (EECs) based on dihadron fragmentation functions (DiFFs). We introduce a (nonperturbative) function we call the "EEC-DiFF" and explicitly show that expanding it for large relative transverse momentum between the two hadrons gives the expression for the "EEC jet" function used in the quark/gluon (perturbative) region. This connection indicates that a formal theoretical matching will be able to bridge the free hadron, transition, and quark/gluon regions and allow all of them to be analyzed simultaneously. We further derive a result valid for near-side EECs in the free hadron and transition regions of annihilation in terms of the EEC-DiFF. Using a simple model for the function, we perform the first fit within the dihadron framework to experimental data in this regime. We find reasonable agreement with the measurements and reproduce the salient features of near-side EECs in the free hadron and transition regions.

    hep-phhep-exnucl-exnucl-thPRL(2026)·27 citations
  8. 08*

    Assessing the sensitivity of Energy-Energy Correlations in annihilation to TMD dynamics

    Alejandro Bris Cuerpo🇪🇸 · Ignazio Scimemi🇪🇸 · Alexey Vladimirov🇪🇸

    We critically examine the back-to-back limit of the energy-energy correlation (EEC) in annihilation as a potential source of information on the Collins-Soper kernel and the strong coupling constant. The analysis is performed within the framework of transverse momentum dependent (TMD) factorization at next-to-next-to-next-to-next-to-leading logarithmic (NLL) accuracy, using a global fit to all available experimental data. Contrary to previous claims, we demonstrate that the current data do not provide meaningful constraints on either the Collins-Soper kernel or .

    hep-phJHEP(2025)·14 citations
  9. 09*

    Flavor SU(3) analysis of the charmless semileptonic decays

    Yi Qiao🇨🇳 · Jin-Huan Sheng🇨🇳 · Yuan-Guo Xu🇨🇳 · Ru-Min Wang🇨🇳

    All charmless ( denotes the light pseudoscalar meson and denotes the vector meson) decays have not been experimentally observed to date, but some of them might be measured in the near future. The charmless decays with the axial-vector () resonance states, the tensor () resonance states and the excited vector () resonance states are studied based on flavor SU(3) analysis in this work, where contains with quantum numbers and contains with quantum numbers . The hadronic amplitudes of the decays are related by the nonperturbative parameters, and the branching ratio predictions of are obtained, and then the branching ratios of the , , and are obtained by the narrow width approximation or further considering the width effects. We find that most branching ratios of the decays and many branching ratios of the decays are on the order of , and all branching ratios with the tensor resonance states and the excited vector resonance states are small. Our results could be tested in the future BelleII and LHCb experiments.

    hep-phPRD(2025)·2 citations
  10. 10*

    Solving two and three-body systems with deep neural networks

    Ruitian Li🇨🇳 · Xuan Luo🇨🇳 · Hao Sun🇨🇳 · Pablo G. Ortega🇪🇸

    We develop a new method for solving two- and three-body bound state problems using unsupervised machine learning techniques. We use a deep neural network to calculate both simple and realistic potentials, obtaining the properties of the deuteron and triton bound states for the chiral effective field theory NN potential. Our results provide significant accuracy with no prior assumptions about the behaviour of the wave function. This neural network technique, which extends from two-body to three-body, may provide insight into potential solutions to the nuclear and hadronic many-body problems.

    hep-phnucl-thEPJC(2026)·3 citations
  11. 11*

    Minimal Dark Matter in the sky: updated Indirect Detection probes

    Mohammad Aghaie🇮🇹 · Alessandro Dondarini🇮🇹 · Giulio Marino🇮🇹 · Paolo Panci🇮🇹

    Minimal Dark Matter is among the simplest and most predictive Dark Matter frameworks, with the Majorana SU(2) 5-plet as its smallest accidentally stable real representation. We present a comprehensive reassessment of its indirect-detection signals. The -ray flux from both Sommerfeld-enhanced annihilations and bound-state formation is calculated, incorporating next-to-leading-order corrections and next-to-leading-log resummation of the relevant electroweak effects. In the Milky Way halo, bound-state formation dominates the flux near 100 GeV. The corresponding low-energy spectrum is used to place constraints based on Fermi-LAT observations of Galactic diffuse emission, while the high-energy part of the spectrum is employed to forecast the required observation time for several of the Milky Way's dwarf spheroidal galaxies using the Cherenkov Telescope Array Observatory (CTAO). Fermi-LAT data strongly disfavor the lower edge of the thermal mass window, even under conservative assumptions about the inner Galaxy density profile. Furthermore, several hundred hours of forthcoming CTAO observations of northern dwarfs should be sufficient to probe the central mass value.

    hep-phastro-ph.HEJCAP(2026)·11 citations
  12. 12*

    Parity violation in Møller scattering within low-energy effective field theory

    Sophie Kollatzsch🇨🇭 · Daniel Moreno🇨🇭 · David Radic🇨🇭 · Adrian Signer🇨🇭

    We include electroweak effects in Moller scattering at low energies in an effective field theory approach and compute the left-right parity-violating asymmetry. The calculation using low-energy effective field theory provides a solid framework to integrate out heavy particles with masses of the order of the electroweak scale, allowing the resummation of all large logarithms between the electroweak scale and the scale, where QCD perturbation theory breaks down. The NLO electroweak corrections with leading logarithmic resummation, combined with QED corrections at NNLO and hadronic effects are implemented into the Monte Carlo framework McMule. Thus, we obtain a fully differential description and present results adapted to the MOLLER experiment. The potential impact of large logarithms at the next-to-leading logarithmic level is investigated.

    hep-phJHEP(2025)·2 citations
  13. 13*

    Collinear limit of the energy-energy correlator in collisions: transition from perturbative to non-perturbative regimes

    Enrico Herrmann🇺🇸 · Zhong-Bo Kang🇺🇸 · Jani Penttala🇺🇸 · Congyue Zhang🇺🇸

    We study the collinear limit of the energy-energy correlator (EEC) in collisions, focusing on the transition from the perturbative QCD regime at relatively large angles to the non-perturbative region at small angles. To describe this transition, we introduce a non-perturbative jet function and perform a global analysis at NNLO+NNLL accuracy using experimental data spanning center-of-mass energies from to GeV. This marks the first accurate description of the EEC across the entire near-side region () within a unified theoretical framework. Our analysis also provides, for the first time, a quantitative extraction of the non-perturbative contribution to the EEC quark jet function, identifying a characteristic transition scale around GeV - distinct from the scale observed in EEC-in-jet measurements in collisions at the LHC, which are dominated by gluon jets. These results offer the first evidence for flavor dependence (quark vs. gluon) in the EEC and provide new insights into the interplay between perturbative and non-perturbative QCD dynamics.

    hep-phhep-exhep-thnucl-ex+121 citations
  14. 14*

    Electron-muon conversion in nuclei and rare decays induced by LFV dark photon

    Alexey S. Zhevlakov🇷🇺 · Sergey Kuleshov🇨🇱 · Valery E. Lyubovitskij🇨🇱 · Evgenie O. Oleynik🇷🇺

    We study lepton-flavor violation (LFV) effects occurring in the conversion in nuclei and in the rare radiative decays of the and mesons with a special impact of the sub-GeV mass vector mediator (dark photon). In the case of the lepton conversion, we make estimates for running and future experiments operating with electron beams at fixed target. Obtained results are implemented in analysis of the LFV decays .

    hep-phPRD(2026)·0 citations
  15. 15*

    The Dark Side of a Tera-Z Factory

    Pablo Olgoso🇮🇹 · Paride Paradisi🇮🇹 · Nudzeim Selimovic🇮🇹

    The future circular collider (FCC-ee or CEPC) will provide unprecedented sensitivity to indirect new physics signals emerging as small deviations from the Standard Model predictions in electroweak precision tests. Assuming new physics scenarios containing a dark matter candidate and a -channel mediator, we analyse the synergy and interplay of future Tera- factories and non-collider tests conducted through direct and indirect searches of dark matter. Our results highlight the excellent prospect for a Tera- run to indirectly probe the presence and nature of dark matter.

    hep-phhep-exJHEP(2026)·12 citations
  16. 16*

    Deep learning approaches to top FCNC couplings to photons at the LHC

    Benjamin Fuks🇫🇷 · Sumit K. Garg🇮🇳 · A. Hammad🇯🇵 · Adil Jueid🇰🇷

    We investigate the sensitivity of the LHC to flavour-changing neutral current interactions involving the top quark and a photon using a model-independent effective field theory framework, focusing on two complementary processes: single top production via and the rare decay in top pair events. To enhance signal discrimination, we employ a range of deep learning classifiers, including multi-layer perceptrons, graph attention networks and transformers, and compare them against a traditional cut-based analysis. Our results demonstrate that attention-based architectures, in particular transformer networks, significantly outperform other strategies, yielding up to a factor of five improvement in the expected exclusion limits. In particular, we show that at the high-luminosity LHC, rare top branching ratios can be probed down to values as low as . Our results thus highlight the significant potential of attention-based architectures for improving the sensitivity to new physics signatures in top quark processes at colliders.

    hep-phhep-exJHEP(2026)·4 citations
  17. 17*

    Decoding the proton's gluonic density with lattice QCD-informed machine learning

    Brandon Kriesten🇺🇸 · Alex NieMiera🇺🇸 · William Good🇺🇸 · T.J. Hobbs🇺🇸 · Huey-Wen Lin🇺🇸

    We present a first machine learning-based decoding of the gluonic structure of the proton from lattice QCD using a variational autoencoder inverse mapper (VAIM). Harnessing the power of generative AI, we predict the parton distribution function (PDF) of the gluon given information on the reduced pseudo-Ioffe-time distributions (RpITDs) as calculated from an ensemble with lattice spacing fm and a pion mass of MeV. The resulting gluon PDF is consistent with phenomenological global fits within uncertainties, particularly in the intermediate-to-high- region where lattice data are most constraining. A subsequent correlation analysis confirms that the VAIM learns a meaningful latent representation, highlighting the potential of generative AI to bridge lattice QCD and phenomenological extractions within a unified analysis framework.

    hep-phhep-latnucl-thPLB(2026)·4 citations
  18. 18*

    Charm rescattering in : an improved analysis

    Gino Isidori🇨🇭 · Zachary Polonsky🇨🇭 · Arianna Tinari🇨🇭

    We improve upon previous explicit estimates of charm rescattering contributions to the decay by including contributions from dipole interactions with the intermediate charm-meson states, and by further investigating the structure of the electromagnetic form factors. Using a model of fundamental meson fields inspired by heavy-hadron chiral perturbation theory, augmented by form factors motivated by theoretical considerations as well as experimental data, we provide a thorough investigation of rescattering contributions induced by intermediate states.

    hep-phEPJC(2025)·20 citations
  19. 19*

    Ultralight dark matter detection with trapped-ion interferometry

    Leonardo Badurina🇺🇸 · Diego Blas🇪🇸 · John Ellis🇬🇧 · Sebastian A. R. Ellis🇨🇭

    We explore how recent advances in the manipulation of single-ion wave packets open new avenues for detecting weak magnetic fields sourced by ultralight dark matter. A trapped ion in a ``Schrödinger cat'' state can be prepared with its spin and motional degrees of freedom entangled and be used as a matter-wave interferometer that is sensitive to the Aharonov-Bohm-like phase shift accumulated by the ion over its trajectory. The result of the spin-motion entanglement is a parametrically-enhanced sensitivity to weak magnetic fields as compared with an un-entangled ion in a trap. Taking into account the relevant boundary conditions, we demonstrate that a single trapped ion can probe unexplored regions of kinetically-mixed dark-photon dark matter parameter space in the ~eV mass window. We also show how such a table-top quantum device will also serve as a complementary probe of axion-like particle dark matter in the same mass window.

    hep-phastro-ph.COhep-exquant-phPRD(2026)·9 citations
  20. 20*

    An Efficient On-shell Framework for EFT Matching

    Ziyu Dong🇪🇸 · Cihang Li🇨🇳 · Teng Ma🇨🇳 · Jing Shu🇨🇳 · Zizheng Zhou🇨🇳

    Standard techniques for one-loop EFT matching often have gauge and basis redundancies, while strictly 4-dimensional on-shell methods fail to capture rational terms. To resolve this, we develop an efficient, channel-based on-shell framework for one-loop matching. Our method reconstructs the local hard-region amplitude by sewing tree amplitudes across double cuts, employing a mass-shift prescription to recover d-dimensional internal states. This d-dimensional sewing retains rational terms and integrates them seamlessly with ordinary cut-constructible contributions. The local amplitude is expanded in the hard region and directly projected onto non-redundant, on-shell EFT amplitude bases. With tadpoles and kinematically independent bubbles systematically fixed by an explicit subtraction convention, our framework successfully merges the rigorous extraction of rational Wilson coefficients with the gauge-invariant elegance of modern amplitude methods.

    hep-ph3 citations
  21. 21*

    Multiple Populations of Same Sterile Neutrino as Dark Matter

    Muping Chen🇺🇸 · Graciela B. Gelmini🇺🇸 · Philip Lu🇰🇷 · Volodymyr Takhistov🇯🇵

    Sterile neutrinos produced in the early Universe that mix with active neutrinos of the Standard Model are typically considered to consist of a single population resulting from one dominant production mechanism. We show that the same sterile neutrino species can naturally emerge with multiple population components, yielding a multi-modal relic momentum spectrum. We consider this with four distinct production scenarios: active-sterile non-resonant oscillations following resonant oscillations in the presence of a primordial lepton asymmetry, gravitational production through sterile neutrinogenesis from populations of evaporating primordial black holes, and heavy singlet Higgs or inflaton decays combined with non-resonant active-sterile oscillations or neutrinogenesis. We identify sterile neutrino mass ranges where a colder and a hotter population can be present with similar contributions and can also contribute non-negligibly to the dark matter relic abundance. We discuss some potential consequences of such a multi-population framework.

    hep-phastro-ph.COJCAP(2026)·2 citations
  22. 22*

    On Focusing Statistical Power for Searches and Measurements in Particle Physics

    James Carzon🇺🇸 · Aishik Ghosh🇺🇸 · Rafael Izbicki🇧🇷 · Ann Lee🇺🇸 · Luca Masserano🇺🇸 · Daniel Whiteson🇺🇸

    Particle physics experiments rely on the (generalised) likelihood ratio test (LRT) for searches and measurements, which consist of composite hypothesis tests. However, this test is not guaranteed to be optimal, as the Neyman-Pearson lemma pertains only to simple hypothesis tests. Any choice of test statistic thus implicitly determines how statistical power varies across the parameter space. An improvement in the core statistical testing methodology for general settings with composite tests would have widespread ramifications across experiments. We discuss an alternate test statistic that provides the data analyzer an ability to focus the power of the test on physics-motivated regions of the parameter space. We demonstrate the improvement from this technique compared to the LRT on a Higgs dataset simulated by the ATLAS experiment and a dark matter dataset inspired by the LZ experiment. We also employ machine learning to efficiently calibrate critical values for a family of tests, which are then inverted to obtain statistically valid confidence intervals.

    hep-phhep-exphysics.data-anstat.AP+1EPJC(2026)·3 citations
  23. 23*

    Hadron Production Processes

    Horst Lenske🇩🇪 · Igor Strakovsky🇺🇸

    The experimental search for the pion -- proposed in 1935 by Hideki Yukawa as the force carrier of the strong nucleon-nucleon interaction -- was rewarded in 1947 when in cosmic ray photographic emulsion data a charged particle was identified with the proper mass of about 300 times the electron mass, completed three years later by the discovery of the neutral pion. Since then, accelerator-driven pion and meson (photo-)production on the nucleon and the associated production of new baryons have become the key elements for ground-breaking discoveries in numerous areas of particle and nuclear physics, from fundamental symmetries and their breaking to low-energy QCD dynamics, laying also foundations for modern elementary particle physics and the Standard Model. This article is an overview of eight decades of experimental and theoretical meson production physics, from isospin to charm and beyond, forming our understanding of hadrons and their interactions.

    hep-phhep-thnucl-th2 citations
  24. 24*

    Generic EFT-motivated beyond General Relativity gravitational wave tests and their curvature dependence: from observation to interpretation

    Laura Bernard🇫🇷 · Suvendu Giri🇨🇦 · Luis Lehner🇨🇦 · Riccardo Sturani🇧🇷

    We present a "dictionary" to expedite the identification of potential deviations in gravitational waveforms from those predicted by General Relativity (GR) during the inspiral phase of black hole binaries. Assuming deviations from GR can be described by a local Effective Field Theory (EFT) formulated in terms of curvature operators (and possibly additional scalar fields), this dictionary characterizes how deviations scale with the masses of the binary components and identifies the leading order Post-Newtonian corrections in generic theories constructed within the EFT framework. By establishing a direct connection between observations and candidate theories beyond GR, this dictionary also aids in distinguishing genuine physical effects from systematic errors. These results can be readily incorporated into essentially all existing tests for the inspiral regime and, in particular, facilitate a more efficient combination of data from multiple events.

    gr-qcastro-ph.GAastro-ph.HEhep-ph+1PRD(2025)·18 citations
  25. 25*

    Novel insight into centre-vortex geometry in four dimensions

    Jackson A. Mickley🇦🇺 · Chris Allton🇬🇧 · Ryan Bignell🇮🇪 · Derek B. Leinweber🇦🇺

    Centre-vortex surfaces are mapped out in four dimensions within the framework of SU(3) lattice gauge theory to understand the role of secondary loops that develop in three-dimensional visualisations of centre-vortex structure, appearing separate from the percolating cluster. Loops that initially appear disconnected in three-dimensional slices can originate from the same connected surface in four dimensions depending on the surface's curvature. For the first time, these secondary loops are identified as "connected" or "disconnected" with respect to the vortex sheet, allowing new insight into the evolution of centre-vortex geometry through the finite-temperature phase transition. At low temperatures, we find that secondary loops of any length primarily lie in the same sheet percolating the four-dimensional volume. Only a handful of small secondary sheets disconnected from the percolating sheet are identified. Above the phase transition, the vortex structure is still found to be dominated by a single large sheet but one that has aligned with the temporal dimension. With the near absence of any curvature orthogonal to the temporal dimension, connected secondary loops become vanishingly rare. Other novel quantities, such as the four-dimensional density of secondary sheets and the sheet sizes themselves, are analysed to build a complete picture of centre-vortex geometry in four dimensions.

    hep-lathep-phnucl-thPRD(2025)·3 citations
  26. 26*

    Innovative Approaches to Unravel the Shower Components' Energy Spectrum with a Single Hybrid Station

    P. Assis🇵🇹 · R. Conceição🇵🇹 · P. J. Costa · M. Freitas🇵🇹 · B. S. González · B. Tomé🇵🇹

    Accurately measuring the energy of shower particles reaching the ground remains a challenge due to the inherent limitations of typical cosmic ray experiments. In this work, we present two experimental strategies to determine the energy spectra of the electromagnetic and muonic components of extensive air showers, leveraging a single hybrid detector station within a regular cosmic ray array. This station consists of a scintillator surface detector (SSD), a water Cherenkov detector (WCD), and Resistive Plate Chambers (RPCs), with a prototype currently being tested at the Pierre Auger Observatory. The first approach exploits the different responses of each detector to the same particles traversing them, allowing, for the first time, the extraction of the high-energy tail of the electromagnetic spectrum and the low-energy tail of the muonic spectrum. The second strategy utilizes machine learning tools to reconstruct the direction of muons using the WCD+RPC system. By correlating this information with the reconstructed muon production depth, the muon kinematical delay can be analyzed, providing access to its energy spectrum.

    hep-exastro-ph.HEhep-phPoS(2025)·0 citations
  27. 27*

    Quantum walks reveal topological flat bands, robust edge states and topological phase transitions in cyclic graphs

    Dinesh Kumar Panda · Colin Benjamin

    Topological phases, edge states, and flat bands in synthetic quantum systems are a key resource for topological quantum computing and noise-resilient information processing. We introduce a scheme based on step-dependent quantum walks on cyclic graphs, termed cyclic quantum walks (CQWs), to simulate exotic topological phenomena using discrete Fourier transforms and an effective Hamiltonian. Our approach enables the generation of both gapped and gapless topological phases, including Dirac cone-like energy dispersions, topologically nontrivial flat bands, and protected edge states, all without resorting to resource-intensive split-step or split-coin quantum walk protocols. Odd and even-site cyclic graphs exhibit markedly different spectral characteristics, with rotationally symmetric flat bands emerging exclusively in -site graphs (). We analytically establish the conditions for the emergence of topological, gapped flat bands and show that gap closings in rotation space imply the formation of Dirac cones in momentum space. Further, we engineer protected edge states at the interface between distinct topological phases in both odd and even cycle graphs. We numerically demonstrate that the edge states are robust against moderate static and dynamic gate disorder as well as remain stable against phase-preserving perturbations and are independent of initial states. This scheme serves as a resource-efficient and versatile platform to engineer topological phases, transitions, edge states, and flat bands in small-scale quantum systems, opening new avenues for robust quantum memory, protected state transfer, and compact implementations of fault-tolerant quantum technologies.

    quant-phcond-mat.dis-nnhep-phmath-ph+2PRB(2026)·3 citations
  28. 28*

    Searches for hidden sectors using decays

    NA62 Collaboration

    Results from the study of the rare decays , and at the NA62 experiment at CERN are interpreted in terms of improved limits for and coupling parameters of hidden-sector models, where is a mediator. World-leading limits are achieved for dark photon, dark scalar and axion-like particle models.

    hep-exhep-phJHEP(2025)·34 citations
  29. 29*

    Prospects for searching for sterile neutrinos in dynamical dark energy cosmologies using joint observations of gravitational waves and -ray bursts

    Lu Feng🇨🇳 · Tao Han🇺🇸 · Jing-Fei Zhang🇺🇸 · Xin Zhang🇺🇸

    In the era of third-generation (3G) gravitational-wave (GW) detectors, GW standard siren observations from binary neutron star mergers provide a powerful tool for probing the expansion history of the universe. Since sterile neutrinos can influence cosmic evolution by modifying the radiation content and suppressing structure formation, GW standard sirens offer promising prospects for constraining sterile neutrino properties within a cosmological framework. Building on this, we investigate the prospects for detecting sterile neutrinos in dynamical dark energy (DE) models using joint observations from 3G GW detectors and a future short gamma-ray burst detector, such as a THESEUS-like telescope. We consider three DE models: the CDM, holographic DE (HDE), and Chevallier-Polarski-Linder (CPL) models. Our results show that the properties of DE can influence the constraints on sterile neutrino parameters. Moreover, the inclusion of GW data significantly improves constraints on both sterile neutrino parameters and other cosmological parameters across all three models, compared to the current limits derived from CMB+BAO+SN (CBS) observations. When GW data are included into the CBS dataset, a preference for emerges at approximately the level in the CDM and CPL models, and reaches about in the HDE model. Moreover, the upper limits on are reduced by approximately 13%, 75%, and 3% in the CDM, HDE, and CPL models, respectively.

    astro-ph.COgr-qchep-phCPC(2026)·14 citations
  30. 30*

    Characterizing the neutron component of extensive air showers with the Surface-Scintillator Detectors of AugerPrime

    Tobias Schulz (for the Pierre Auger Collaboration)

    Neutrons are the only neutral hadrons that remain stable over the timescale of an air-shower development. Their energy is lost only through hadronic interactions and quasi-elastic scattering, which results in their high abundance at the ground. The signals from the electromagnetic and muonic components in scintillation detectors typically span only a few microseconds. In contrast, the neutrons can cause delayed pulses in scintillation detectors up to and beyond several milliseconds after the passage of the shower front. Selection of an appropriate time window allows us to isolate and characterize the neutron component of air showers, which may provide a new, direct method to probe hadronic interactions during the shower development. We report the measurement of a neutron component at ultra-high energies using the Surface-Scintillator Detectors (SSD) from the AugerPrime upgrade of the Pierre Auger Observatory. We provide a first look at the pulse-amplitude spectrum together with our measured rate and lateral distribution of the neutron component.

    astro-ph.HEhep-phphysics.ins-detPoS(2025)·1 citation
  31. 31*

    Implications of the recent neutron decay measurements on the properties of compact objects -- a dark star with nucleonic shell ?

    M.Veselský🇨🇿 · V. Petousis🇨🇿 · Ch.C. Moustakidis🇬🇷 · M. Vikiaris🇬🇷

    Recent experimental observation suggests that neutron decay is always accompanied by emission of electron while in 1% of cases proton is not emitted. We develop a scenario kinematically compatible with experimental observation, where neutron decay results in production of two dark matter particles of about half the mass of neutron and test properties of neutron stars with admixture of such particles. Constraints on mass and coupling to vector dark boson are obtained. The structure of the compact object is modified to a dark star with a shell of nucleonic matter around the nuclear saturation density.

    nucl-thastro-ph.HEhep-ph2 citations
  32. 32*

    CMB constraints on axion warm inflation

    Asma Alaei🇮🇷 · Sukannya Bhattacharya🇪🇸 · Vahid Kamali🇨🇦

    In this work, we propose a model of warm inflation driven by axion-like particles interacting with gauge fields, with implications for the early universe's thermal evolution. By extending traditional warm inflation models, we introduce a dissipation mechanism through the thermal fluctuations of electromagnetic fields, leading to a non-trivial backreaction on the inflaton's dynamics. Our results are consistent with CMB observations, even for a natural sub-Plankian axion decay constant . We present precise constraints on the model's free parameters, using CAMB and CosmoMC codes. These findings offer new insights into the thermal history of the universe and the nature of inflationary dynamics.

    astro-ph.COhep-phPRD(2026)·1 citation
  33. 33*

    Inflationary Fossils Beyond Perturbation Theory

    Riccardo Impavido🇮🇹 · Nicola Bartolo🇮🇹

    In this work we provide the missing link between two approaches aimed at characterizing the effect of long perturbation modes in Inflation. We consider the Inflationary Fossils' approach (arXiv:1203.0302 and related works) that characterizes the power-spectrum of the inflaton field in presence of other long and non dynamical fossil fields, and a technique, appeared in arXiv:2103.09244, that computes, beyond perturbation theory, the power-spectrum of a scalar field in presence of a large fluctuation of a second field. We clarify a few points on the applicability of the non-perturbative technique. We prove in six distinct cases, one involving a violation of the consistency conditions, that the non-perturbative approach, once expanded to first order in the coupling, matches the perturbative result following the Fossils' approach. We believe that this non-perturbative technique extends to all orders the Fossils' approach, resumming infinitely many diagrams of standard in-in perturbation theory.

    astro-ph.COhep-phhep-thJCAP(2026)·0 citations
  34. 34*

    Accelerated cosmological expansion from pseudo-Hermiticity

    Edmund J. Copeland🇬🇧 · Andrei Lazanu🇬🇧 · Peter Millington🇬🇧 · Esra Sablevice🇬🇧

    We show that a well-studied pseudo-Hermitian field theory composed of two complex scalar fields can generate accelerated cosmological expansion through a novel mechanism. The dynamics is unique to the pseudo-Hermitian field theory, and it arises in the regime of broken antilinear symmetry, wherein a growth instability from the resulting complex eigenspectrum competes with the Hubble damping. The azimuthal components of the complex scalar fields asymptote to a constant rate of rolling at late times, reminiscent of motion around the infinite staircase of M.C. Escher's lithograph "Ascending and Descending". The resulting centripetal acceleration drives the radial components of the field away from the minimum of the potential, and the system generates a self-sustaining and constant Hubble rate at late times, even when tuning the minimum of the potential such that the classical vacuum energy is vanishing. This result evidences the potential to generate novel and physically relevant dynamics that are unique to pseudo-Hermitian field theories, and that their regimes of broken antilinear symmetry can be physically relevant in dynamical spacetimes.

    hep-thastro-ph.COhep-ph0 citations
  35. 35*

    Layout optimization for the LUXE-NPOD experiment

    Melissa Almanza Soto🇪🇸 · Oleksandr Borysov🇮🇱 · Torben Ferber🇩🇪 · Shan Huang🇪🇸 · Adrián Irles🇪🇸 · Markus Klute🇩🇪 · Jesús P. Márquez Hernández🇪🇸 · Josep Pérez Segura🇪🇸 · Raquel Quishpe🇩🇪 · Yotam Soreq🇮🇱 · Noam Tal Hod🇮🇱 · Nicolò Trevisani🇩🇪

    Beam dump experiments represent an effective way to probe new physics in a parameter space, where new particles have feeble couplings to the Standard Model sector and masses below the GeV scale. The LUXE experiment, designed primarily to study strong-field quantum electrodynamics, can be used also as a photon beam dump experiment with a unique reach for new spin-0 particles in the mass and couplings to photons ranges. This is achieved via the ``New Physics search with Optical Dump'' (NPOD) concept. While prior estimations were obtained with a simplified model of the experimental setup, in this work we present a systematic study of the new physics reach in the full, realistic experimental apparatus, including an existing detector to be used in the LUXE NPOD context. We furthermore investigate updated scenarios of LUXE's experimental plan and confirm that our results are in agreement with the original estimations of a background-free operation.

    hep-exhep-phPRD(2025)·4 citations
  36. 36*

    SPLENDOR: a novel detector platform to search for light dark matter with narrow-gap semiconductors

    P. Abbamonte🇺🇸 · A. Albert🇺🇸 · D. S. M. Alves🇺🇸 · J. Anczarski🇺🇸 · T. Aralis🇺🇸 · T. U. Böhm🇺🇸 · C. Boyd🇺🇸 · J. Chen🇺🇸 · P.-H. Chu🇺🇸 · M. S. Cook🇺🇸 · C. W. Fink🇺🇸 · M. L. Graesser🇺🇸 and 22 other authors

    We present the design and current status of SPLENDOR, a novel detector platform that combines narrow-gap semiconductor targets with low-noise charge readout to achieve sensitivity to dark matter energy deposits well below the eV scale. SPLENDOR is designed to be a modular and scalable system able to accommodate different target materials and signal readout technologies. SPLENDOR's present strategy entails: (i) the use of strongly correlated f-electron semiconductors with anisotropic electronic structures to enable not only sub-eV energy thresholds, but also directional sensitivity to the incoming dark matter flux, allowing for signal-background discrimination via daily modulation, and (ii) custom charge readout based on cryogenic high-electron-mobility transistor (cryoHEMT) amplifiers approaching single-electron resolution. We report on the selection and characterization of EuInSb as the target material for SPLENDOR's first prototype detector, as well as the development and calibration of the prototype amplifier chain, achieving a measured charge resolution of 207 electrons in silicon test samples, consistent with predicted performance. This provides a demonstration of the detector architecture, which is now ready for deployment in a dark matter search campaign to deliver SPLENDOR's first science results. Finally, we present estimates of sensitivity reach in the parameter space of athermally produced relic dark matter under high- and low-background environments, and for various amplifier technology upgrades with increasing performance, including planned quantum sensing upgrades in order to achieve our ultimate goal of sub-electron resolution in optimized systems. SPLENDOR provides a novel approach to dark matter direct detection, combining quantum sensing with material's design to open new avenues of exploration in the sub-MeV mass range of dark matter parameter space.

    physics.ins-detastro-ph.COcond-mat.str-elhep-ex+115 citations
  37. 37*

    On the Energy Distribution of the Galactic Center Excess' Sources

    Florian List🇦🇹 · Yujin Park🇺🇸 · Nicholas L. Rodd🇺🇸 · Eve Schoen🇺🇸 · Florian Wolf🇦🇹

    The Galactic Center Excess (GCE) may yet herald the discovery of annihilating dark matter. Weighing against that conclusion are analyses showing evidence for dim point sources within the spatial structure of the emission. Due to technical limitations these analyses are purely spatial with all spectral information that could disentangle the excess from astrophysical backgrounds discarded. Here, we demonstrate that a neural network simulation-based inference approach can jointly analyze the spatial and spectra data. The addition is profound: energy information drives the putative point sources to be significantly dimmer, indicating either the GCE is truly diffuse in nature or made of an exceptionally large number of sources. Quantitatively, for our best fit background model, the excess is essentially consistent with Poisson emission as predicted by dark matter. If due to point sources, our median prediction is sources, or more than 35,000 at 90\% confidence, both orders of magnitude larger than the hundreds preferred by earlier point-source analyses of the GCE, although variations allowed by background systematics could reduce the required number of sources by roughly an order of magnitude.

    astro-ph.HEastro-ph.COastro-ph.IMcs.LG+1PRL(2026)·18 citations
  38. 38*

    Analytic Regression of Feynman Integrals from High-Precision Numerical Sampling

    Oscar Barrera🇺🇸 · Aurélien Dersy🇺🇸 · Rabia Husain🇺🇸 · Matthew D. Schwartz🇺🇸 · Xiaoyuan Zhang🇺🇸

    In mathematics or theoretical physics one is often interested in obtaining an exact analytic description of some data which can be produced, in principle, to arbitrary accuracy. For example, one might like to know the exact analytical form of a definite integral. Such problems are not well-suited to numerical symbolic regression, since typical numerical methods lead only to approximations. However, if one has some sense of the function space in which the analytic result should lie, it is possible to deduce the exact answer by judiciously sampling the data at a sufficient number of points with sufficient precision. We demonstrate how this can be done for the computation of Feynman integrals. We show that by combining high-precision numerical integration with analytic knowledge of the function space one can often deduce the exact answer using lattice reduction. A number of examples are given as well as an exploration of the trade-offs between number of datapoints, number of functional predicates, precision of the data, and compute. This method provides a bottom-up approach that neatly complements the top-down Landau-bootstrap approach of trying to constrain the exact answer using the analytic structure alone. Although we focus on the application to Feynman integrals, the techniques presented here are more general and could apply to a wide range of problems where an exact answer is needed and the function space is sufficiently well understood.

    hep-thcs.NAhep-phmath.NAJHEP(2026)·6 citations

* 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.