PaperPanorama

HEP Phenomenology·hep-ph

Thu·Sep 10, 2026

36 papers26 primary·10 cross-listed

  1. 01

    Feasibility of a collider-based detector search for upward-going fermions produced from gravitationally-bound dark matter within the Earth

    Tamas Almos Vami🇺🇸 · Sanjit Masanam🇺🇸 · Matt Bellis · Josephine Swann · Philip Tanedo🇺🇸 · Adam Green

    Dark matter is theorized to be gravitationally captured within the Earth and to subsequently annihilate into dark photons. The dark photons kinetically mix with the Standard Model photons which would allow the decay of the dark photon to pairs of observable fermions near Earth's surface. We examine the feasibility and sensitivity of an LHC-class general-purpose detector to observe muons originating from these dark matter models. We calculate the expected signal rates at a hypothetical general-purpose detector and examine the effect of significant backgrounds on sensitivity. We also consider experimental efficiencies of such a detector to determine expected limits for the proposed analysis. We find these expected limits constitute a significant improvement over existing ones, strongly motivating a search for upward-going muons stemming from dark matter bound within the Earth.

    hep-phhep-ex0 citations
  2. 03

    On the analytic continuation and matching of threshold singularities from Vacuum Amplitudes

    Selomit Ram\'ırez-Uribe🇲🇽 · Prasanna K. Dhani🇨🇭 · German F.R. Sborlini🇪🇸 · Germán Rodrigo🇪🇸

    We provide a detailed discussion for all kinematical configurations of the analytic continuation to negative values of initial-state on-shell energies used to generate interferences of scattering amplitudes from vacuum amplitudes in the Loop-Tree Duality. We also extend previous discussions on the matching of threshold singularities and introduce angular averaging as an efficient strategy to achieve a local cancellation when the matching of threshold singularities from vacuum amplitudes is constrained by flavour.

    hep-phhep-exhep-th0 citations
  3. 04

    Nuclear interference versus dark sector excitation in the 248 keV LUX-ZEPLIN recoil candidate

    Imtiaz Khan🇨🇳 · Salvatore Capozziello🇮🇹 · G. Mustafa🇨🇳 · Farruh Atamurotov🇺🇿 · Ahmadjon Abdujabbarov🇨🇳 · Chengxun Yuan🇨🇳

    The 2026 LUX-ZEPLIN (LZ) high energy nuclear recoil search reports one event at and finds the elastic isovector interaction locally favored at about in the heavy dark matter regime. We examine whether this recoil scale can arise from resolved nuclear response within the elastic interaction and compare its spectral, target, and annual modulation behavior with endothermic dark sector excitation. Covariant matching correlates four Galilean operators, removes the longitudinal spin response algebraically, and fixes interference between density and orbital spin orbit amplitudes. The GCN and JJ55 xenon shell model calculations give a second natural xenon cancellation at and . In the heavy mass regime, its position changes by less than from a dark matter mass of to the asymptotic limit. A curvature weighted isotope centroid reproduces the position and residual depth of the natural xenon minimum. Direct Ar calculations shift the nuclear feature to about and , whereas endothermic excitation follows reduced mass scaling set by the dark state splitting. At a dark matter mass of , the endothermic Ar to Xe scale ratio is , compared with to for the nuclear calculations. Elastic scattering gives a few percent annual modulation in the adopted halo model, while endothermic solutions near the maximum laboratory halo speed show much larger seasonal variation. These scaling and timing behaviors provide tests of a target-dependent nuclear cancellation against an excitation energy set by dark sector kinematics.

    hep-ph0 citations
  4. 05

    Level-Four Modular Symmetry Selected by the Harmonic Pattern of Quark and Lepton Masses

    Vernon Barger🇺🇸

    The mass ratios of the quarks and charged leptons follow a simple pattern. The logarithmic generation steps come in a two to one ratio, a note to its octave, and the ordering is mirrored between the up-down and down-lepton comparisons. The pattern, read as charge counting on a clock, is realized at level four and at no level that is not a multiple of four, which motivates modular level four and the finite group , with the generations in the triplet at charges and the mirror in the sign singlet. The charged-lepton mass ratios lie on a theta-dressed lattice at , which sets the base , taken as , and the harmonic modulus . Five postulates in the weight one-half theta constants, identified on the same data, reproduce the six quark masses from three lepton masses and the electroweak scale. Two more and one empirical relation for close the CKM matrix, giving , , , and against the measured , with no continuous parameter. The unitarity triangle follows, with apex against the measured , and against . The same structure carries the neutrinos. A single theta insertion gives , which holds at on the 207-day JUNO data, and the harmonic condition completes a normal-ordered spectrum with ~meV, ~eV, a CP-conserving phase , and effective Majorana masses quantized at to ~meV. The ultraviolet completion belongs to the magnetized torus class, with Pati--Salam the natural gauge embedding.

    hep-phhep-exhep-th0 citations
  5. 06

    Nucleon Stron-Interactions Size From Charmonium Photoproduction

    Xiangdong Ji🇺🇸 · Sylvester Joosten🇺🇸 · Zein-Eddine Meziani🇺🇸 · Dimitra A. Pefkou🇺🇸

    Protons and neutrons differ dramatically in their electromagnetic sizes, but are bound by the strong (color) force and have nearly identical masses, like two twin states of the same ``nucleon". To reveal the overall spatial extent, it must be examined through the strong interaction rather than electromagnetism. The particle, a compact color-charge dipole of a charm quark and antiquark, provides an ideal probe. Recent high-precision measurements of near-threshold production at Jefferson Lab offer a more precise glimpse of the proton's gluonic spatial structure. Combining these data with recent quark-sector results, we extract the distribution of the color field underlying mass generation in the nucleon and find it extends beyond both charge and mass distributions, revealing the nucleon's overall strong-interaction spatial extent of fm.

    hep-ph0 citations
  6. 07

    Constraints on Neutron-Electron Quantum Dark Forces

    V. Kurmangaliyeva🇺🇸 · B. Massak · O. Agyl-Mussapar · S. Amangeldinova🇰🇿 · W. M. Snow🇺🇸

    Interactions induced by dark matter particles which couple bilinearly to standard model particles through quantum fluctuations were termed quantum dark forces by Brax, Fichet, and Pignol, who constrained the mass and couplings of dark scalar, dark vector, and dark fermion bilinear exchange between nucleons. We extend their results to derive new constraints on quantum dark forces from bilinear scalar exchange between neutrons and electrons

    hep-ph0 citations
  7. 08

    Heavy Higgsino Interpretation of the LZ Event

    Kevin Langhoff🇺🇸

    The LZ experiment has recently reported a keV nuclear recoil event in a region where backgrounds are expected to be low. A pure higgsino scattering inelastically through a -boson is an exciting possible interpretation of this event, but at the mass required for thermal freeze-out to account for all dark matter, TeV, it predicts several events in the empty high-energy sideband corresponding to keV and is further excluded by searches for high energy neutrinos coming from the Sun by the IceCube detector. We fit the higgsino mass scale and neutral state mass splitting, and , to the event and the empty sideband. We additionally recompute solar capture bounds as a function of . The LZ data alone are best fit at low mass, GeV, but is excluded by solar capture. The parameter space most consistent with the event, the empty sideband and the solar capture bound is GeV with keV, with some dependence on DM halo modeling. Such a higgsino must be produced by some other method than standard freeze-out; this can be achieved by freezing-out during a period of early matter domination which ends by reheating the universe to temperature TeV. We give a simple proof of concept model which does this via a Kim-Nilles mechanism and therefore connects to the origin of the Higgsino mass scale and solves the strong CP problem.

    hep-ph0 citations
  8. 09

    Cutoff Scales in the Type-I 2HDM with Strongly First-Order Electroweak Phase Transitions: One-Step versus Multistep

    Jin-Hwan Cho🇰🇷 · Dongjoo Kim🇰🇷 · Jinheung Kim🇰🇷 · Jeonghyeon Song🇰🇷

    We investigate the UV viability of strongly first-order electroweak phase transitions (SFOEWPTs) in the Type-I two-Higgs-doublet model (2HDM), considering both the Normal and Inverted Scenarios (NS and IS). For each scenario, we scan physical parameter points and determine the cutoff scale through a two-loop renormalization-group analysis, where is set by the first violation of perturbativity, tree-level unitarity, or vacuum stability. For one-step transitions, the SFOEWPT strength and high-scale UV validity exhibit a pronounced tension: the maximal transition strength decreases with increasing . Requiring limits the transition strength to in the NS and in the IS, while requiring restricts the cutoff scale to in both scenarios. Multistep transitions exhibit qualitatively different behavior. Two-step SFOEWPTs, found in appreciable numbers only in the IS, can remain theoretically consistent up to while reaching , without exhibiting the pronounced - anticorrelation characteristic of one-step transitions. Imposing UV validity also sharpens the phenomenologically viable parameter space. In particular, increasing the minimum allowed cutoff scale for two-step SFOEWPTs in the IS favors a light scalar spectrum and moderate , providing a promising target for current and future collider searches.

    hep-ph0 citations
  9. 10

    Inclusive productions of in annihilation at Belle

    Zhan Sun🇨🇳 · Shu-Jian Qi🇨🇳 · Ying-Zhao Jiang🇨🇳

    We study at next-to-leading order (NLO) in within the nonrelativistic QCD (NRQCD) framework to assess the color-octet (CO) mechanism at low energies. QCD corrections significantly enhance both color-singlet (CS) and CO leading-order results, with non-negligible QED-diagram contributions to the CS channel. At , CO terms increase the inclusive cross section by --, and the enhancement grows rapidly with , yielding an energy dependence distinct from CS predictions and providing a sensitive test of NRQCD. Including feed-down further amplifies the NRQCD prediction by about at . With Belle's reconstruction of and six decay channels, the process shows promising potential for observation.

    hep-ph0 citations
  10. 11

    Next-to-Leading-Order Calculation of the Light Tensor Hybrid Correlation Function

    R.T. Kleiv🇨🇦 · J. Ho🇺🇸 · S. Li🇩🇪 · S. Narison🇫🇷 · T.G. Steele🇨🇦 · D. Rabetiarivony🇲🇬

    We report on the QCD calculations underlying a next-to-leading-order (NLO) QCD Laplace sum-rule analysis of the light tensor hybrid meson mass and coupling. This article focuses on the calculation of the NLO perturbative and leading-log NLO non-perturbative contributions. The diagrammatic renormalization method is employed, and a renormalization-group approach is used to determine the leading-log NLO corrections to condensate contributions, including the dimension-six gluon condensate, whose renormalization we extend to quark flavors. The NLO contributions provide a systematically improved theoretical description of the light tensor hybrid correlation function, leading to more reliable determinations of its mass and coupling. The phenomenological implications of our results are discussed separately in these proceedings.

    hep-ph0 citations
  11. 12

    More QCD Masterclass Lectures on Jet Physics and Machine Learning

    Andrew J. Larkoski🇺🇸

    These lectures were presented at the 2026 QCD Masterclass in Saint-Jacut-de-la-mer, France. They supplement the published notes from the 2024 school with presentation of a few new topics that have become popular in recent years. These include event metrics, anomaly detection, scaling laws, the limits of classification performance, and regression that respects spacetime symmetries. Many of the presented results are known, but some new results are derived, especially related to anomaly detection. As was the case in those original notes, while all these problems are motivated from machine learning applied to QCD, no discussion of details of machine learning is presented in these notes. All results follow from application of fundamental principles of QCD. I begin these notes with an apology for humanist physics.

    hep-phhep-ex0 citations
  12. 13

    Charmed baryon semileptonic decays in a relativistic three-quark model

    Ru-Hui Ni🇨🇳 · Zhen-Yang Wang🇨🇳 · Jia-Jun Wu🇨🇳 · Bing-Song Zou🇨🇳

    We study the spin- semileptonic decays of singly charmed baryons (, , and ) into the light baryon octet within a relativistic three-quark model. The constituent quark masses and spatial wave functions are determined by the baryon mass spectrum. For the physical states, the light flavor breaking () naturally induces a coherent mixing between the flavor antitriplet and flavor sextet configurations, which is completely fixed by the mass eigenstates. Consequently, no adjustable parameters are introduced in calculating the weak transition amplitudes. Using these wave functions, we calculate the helicity amplitudes with the Bakamjian--Thomas boost, including the spatial Jacobian and the Wigner rotations of the constituent spins. The branching fractions, distributions, longitudinal polarizations, and form factors are then obtained from these amplitudes. For the and modes, our branching fractions and form factors are in good agreement with the experimental data and Lattice QCD results. For , we obtain branch ratio , which is consistent with recent Lattice QCD calculations but lies well above the current experimental average. Clarifying the origin of this discrepancy calls for further dedicated efforts from both experimental and theoretical sides. For the decay, the spin- spectator yields a positive longitudinal polarization of the final , in contrast to the negative polarizations in the predominantly antitriplet decay modes. Our predictions for the spectra, angular asymmetries, and final baryon polarizations may provide useful references for future measurements of singly charmed baryon semileptonic decays.

    hep-phhep-ex0 citations
  13. 14

    Radiative Corrections to the Direct Detection of Inelastic Scattering of Higgsino-like Neutralino Dark Matter

    Arindam Chatterjee🇮🇳 · Debottam Das🇮🇳 · Syed Adil Pasha🇮🇳 · Alexander Pukhov🇷🇺 · Rahul Puri🇮🇳

    The direct detection (DD) of Higgsino-like dark matter (DM) through inelastic scattering processes may provide a promising avenue, along with the elastic scattering, when the mass splitting between the neutral Higgsino pairs is extremely tiny. The mass splitting can be reduced further by adopting the on-shell renormalization for the neutral and charged Higgsinos in the MSSM. Moreover, all the one-loop electroweak (EW) corrections to the three-point vertices for the neutralino(s)-Higgs interactions have been considered, while both elastic and inelastic DM-nucleon scattering cross-sections have been calculated primarily through Higgs exchange. Subsequently, the expected number of scattering events in the latest LUX-ZEPLIN (LZ) DD experiment are also computed. Our results highlight a few scenarios in which the inelastic component may exceed the corresponding elastic component, leading to enhanced direct detection scattering rates.

    hep-ph0 citations
  14. 15

    On the universality of soft emission beyond the next-to-soft order

    Martin Beneke🇩🇪 · Maria Santana🇩🇪 · Michel Stillger🇩🇪

    The Low-Burnett-Kroll theorem (extended to non-abelian gauge theory) states that the tree-level emission amplitude of a soft gauge boson from an arbitrary hard process can be expressed in terms of the non-radiative amplitude including the next-to-soft term. Reformulating the soft theorem in the framework of an on-shell effective theory leads to a natural gauge-invariant split into an external and internal emission process to any order in the soft expansion. In this framework, we derive a compact expression for the all-order external emission amplitude expressed in terms of the non-radiative amplitude, and express the local emission amplitude through a single gauge-invariant operator at every order beyond the next-to-soft one. For scalar QCD, we compare the number of Lorentz- and -invariant amplitudes for the radiative and non-radiative hard process with an arbitrary number of scalar quarks and antiquarks.

    hep-phhep-th0 citations
  15. 16

    Probing the Electromagnetic Structure of Heavy-Light Hybrid Mesons with Vector and Axial-Vector Quantum Numbers

    A. Amiri🇮🇷 · K. Azizi🇮🇷 · P. Eslami🇮🇷

    We investigate the electromagnetic (EM) properties of vector and axial-vector heavy-light hybrid mesons within the light cone QCD sum rules framework. These states are characterized by an explicit gluonic degree of freedom and are studied through interpolating currents corresponding to the , , , and hybrid configurations. By analyzing the correlation function in the presence of an external background photon and matching its hadronic and QCD representations, we derive the light cone sum rules for the magnetic dipole and electric quadrupole form factors and extract the corresponding electromagnetic moments at . The QCD side of the sum rules incorporates the perturbative photon emission contributions as well as the relevant non-perturbative effects described by photon distribution amplitudes (DAs). Numerical predictions are obtained for the charged , , , , , and hybrid configurations. The calculated electromagnetic moments show variations among the different hybrid configurations. A more systematic pattern is observed for the electric quadrupole moments (EQMs): the results obtained from the and currents are generally close to each other, as are those obtained from and , with the former pair generally yielding somewhat larger magnitudes. The magnetic dipole moments (MDMs), in contrast, do not necessarily exhibit the same systematic grouping, although they also show variations among the different currents and configurations. For the bottom-containing states...

    hep-phhep-ex0 citations
  16. 17

    Zero-locus diagnostic of the direct contact term in

    Seung-il Nam🇰🇷 · Jung Keun Ahn🇰🇷

    We formulate, within a fixed FSI-improved amplitude convention, a zero-locus diagnostic for the direct contact term in . The resonant contribution is dressed channel by channel with the complex Omnès function, the direct term is multiplied by the averaged Omnès factor, and a real constant background is retained as a smooth residual amplitude. In this convention, with , and the difference of two constrained invariant-mass gradients of the reduced Dalitz density gives a local quadratic identity for on the zero-contour. The construction provides a closure and stability diagnostic complementary to a global Dalitz-plot fit. For the benchmark input , we identify a numerically stable zero-contour branch around and , where the tight-contour median estimator reproduces , a closure recovery of the injected coupling within the chosen FSI-improved convention rather than an independent extraction. We further vary the mass-window selection of the branch. The median remains close to the injected value under shifts of the window and moderate changes of its width, while the mean and standard deviation are more sensitive to outlier points near unstable quadratic branches. The method therefore identifies Dalitz-plane regions where the direct-term interference is locally well-conditioned and provides useful guidance for control-region choices and systematic variations in future global fits.

    hep-phnucl-th0 citations
  17. 18

    Decoding Heavy Top-Philic Resonances at the HL-LHC: From Parton Kinematics to Deep Learning Signatures

    Hadjer Boukhrouf🇩🇿 · Zouina Belghobsi🇩🇿

    The stabilization of the electroweak scale strongly motivates the search for new heavy resonances and top-partner states. We investigate the discovery potential of exotic resonances mediating the production of vector-like quarks at the High-Luminosity LHC ( TeV), focusing on the cascade decay. Using a model-independent Effective Field Theory approach, we classify the intermediate mediator by its spin (0 and 1) and color (singlet and octet) representations. Parton-level kinematics demonstrate that the normalized differential cross-section with respect to the transverse momentum provides a robust observable for spin discrimination. To address the experimental challenges of highly boosted, semi-resolved hadronic decays, we introduce a cut-flow strategy based on an inclusive four-jet invariant mass reconstruction, . Because this standard approach remains sensitive to systematic uncertainties, we implement a Generalized BSM Tagger based on Deep Neural Networks (DNNs). By exploiting non-linear multi-jet correlations, the DNN achieves robust background rejection factors ranging from to while preserving the underlying partonic signatures. Projecting to an integrated luminosity of , this combined strategy yields a projected statistical significance of for the dominant color-octet vector channel, establishing strong evidence potential and offering a robust phenomenological baseline for future HL-LHC searches.

    hep-ph0 citations
  18. 19

    An improved partial-wave projection of the one-particle exchange in relativistic three-body scattering

    Nicholas C. Chambers🇺🇸 · Andrew W. Jackura🇺🇸

    A critical component of relativistic three-body scattering amplitudes is the one-particle exchange (OPE) process, wherein a single particle is exchanged between incoming and outgoing two-body subsystems. We present an improved, finite-sum expression for the partial-wave OPE that is valid for three massive, spinless particles in arbitrary angular momentum configurations. A collection of analytic and numerical checks demonstrate that our finite-sum expression reproduces the known properties of the partial-wave OPE, including its threshold scaling behavior and singularity structure. Compared with previous work, this result more efficiently handles the rapid proliferation of partial waves contributing to any total angular momentum , enabling the construction of robust wavesets for three-body amplitude analyses.

    hep-phhep-lathep-thnucl-th0 citations
  19. 20

    Towards new D meson fragmentation functions

    Manuel Epele🇦🇷 · Felix Hekhorn🇫🇮 · Ilkka Helenius🇫🇮 · Hannu Paukkunen🇫🇮 · Pia Zurita🇪🇸

    The Heavy Meson (Hymn) collaboration presents a new extraction of D meson fragmentation functions using experimental data from LEP and LHC. We focus particularly on kinematical regimes where perturbative QCD should be safely applicable to avoid contamination from higher-twist effects which could lead to an apparent process dependence of fragmentation functions. We account for the initial-state radiation and, as a novel ingredient, consider the prompt and non-prompt contributions separately. The analysis is carried out at next-to-leading order accuracy including uncertainty estimation based on Monte-Carlo replica technique. We disucss the exemplary case of here and defer the results for and to a forthcoming publication.

    hep-ph0 citations
  20. 21

    Searching for New Physics with Reinforcement Learning

    Jacky Kumar🇺🇸 · Marianne Bouchard🇨🇦 · David London🇨🇦

    Finding new physics (NP) is the most important problem in particle physics today. Studying ``anomalies'', i.e., measurements of low-energy observables whose values disagree with the predictions of the Standard Model (SM), is a powerful search strategy. The SM Effective Field Theory (SMEFT) provides a general model-independent framework for parameterizing NP; it is natural to try to find the SMEFT operator(s) that can explain such anomalies. This is a challenging task because (i) the number of SMEFT operators is enormous, and (ii) at loop level there are very complicated correlations among the operators. Analyses by humans typically rely on phenomenological intuition to decide which operators are relevant. This is often biased and does not explore the complete SMEFT operator space. Interestingly, reinforcement learning (RL) techniques excel at tasks that require decision making to achieve their goals. In this paper, we introduce an RL method that can be used to find the SMEFT operators that explain any anomalies. We test it on the CDF -mass anomaly, and show that it reproduces (and improves upon) known results. We then consider a far more complicated situation with multiple anomalies and show that, even here, this method is able to find the SMEFT operators that explain the data. Our RL method can therefore be used to efficiently search for NP at the level of SMEFT.

    hep-phcs.LG0 citations
  21. 22

    Quantifying Information Hierarchy for Neutrino Oscillation Parameters at JUNO

    Yu-han Shu · Neetu Raj Singh Chundawat🇮🇳 · Luis A. Delgadillo🇨🇳 · Yu-Feng Li

    Since neutrinos are quantum systems inherently, the precision with which oscillation parameters can be estimated ultimately depends on how much information about these parameters is encoded in the neutrino state and how efficiently that information can be extracted through measurement. In this work, we quantify how information encoded in reactor antineutrino states flows through the measurement process to the events observed at the detector, using quantum and classical Fisher information. We establish the information ladder for JUNO, revealing that the loss of precision across different information levels is strongly parameter dependent. We demonstrate that the JUNO configuration approaches the optimal statistical limit for the oscillation parameters of the solar sector, while information on and is significantly degraded by the measurement strategy and detector effects. Despite this information loss, the remaining information is sufficient for JUNO to achieve sub-percent precision on within six years.

    hep-phhep-exquant-ph0 citations
  22. 23

    Transition magnetic-dipole dark matter and the LZ230616 high-recoil candidate

    Yuxuan He🇨🇳

    A transition magnetic dipole connects an endothermic nuclear recoil to a delayed photon. We study this interpretation of LZ230616, the 248-keV candidate in LZ's extended-energy search. Imposing the thermal abundance in a point hypercharge theory fixes a moment near at the preferred masses, leaving a mass--splitting fit. The excited state travels about 0.6 m, making its decay relevant to the isolated-recoil selection. A position-dependent TPC-exit response gives conditional maxima at without the high-energy sideband and with its zero-count proxy. Their line rates exceed the H.E.S.S. Einasto bound by factors of about 11 and 5.5. We examine halo dependence, other direct and indirect probes, and charged-messenger matching. Allowing a smaller moment and additional annihilation preserves the low-mass maxima while admitting heavier fits over 0.1--100 TeV. Delayed recoil--photon data can measure the splitting and moment, testing both the detector response and the assumed connection to thermal annihilation.

    hep-ph0 citations
  23. 24

    Anomalies at the End of the Universe?

    Jay Hubisz🇺🇸 · Hanieh Moradipasha🇺🇸 · Prakriti Singh🇺🇸

    The spatial distribution of anomalies in extra dimensional theories on a slice of AdS leads to a puzzle where anomalies may not match across different geometries that are dual to various states of the same CFT. We argue that consistency of the anomaly across such geometries necessitates the addition of topological terms or other bulk fermions to the theory that flow any IR localized consistent anomaly into the ``UV" region of these geometries if one wishes to have such a dual interpretation.

    hep-phhep-th0 citations
  24. 25

    Inelastic Dark Matter and High-Energy Recoil Signatures in LZ

    Zi-Tong Fan🇨🇳 · Hong-Jian He🇨🇳 · Yu-Chen Wang🇨🇳 · Yue Zhao🇨🇳

    We study the inelastic dark matter (iDM) that consists of two-component dark matter particles and serves as a minimal extension beyond the commonly used one-component DM models. A distinctive feature of such iDM scattering with the target nuclei is to favorably produce signals at high nuclear recoil (NR) energy region in both exothermic and endothermic processes. In particular, for the exothermic dark matter scenario, the signal does not rely on the tail of the Boltzmann velocity distribution. As a result, the required DM-nucleus scattering cross section is significantly reduced, which in turn helps to substantially relax the stringent constraints imposed by IceCube neutrino searches. Using the inelastic DM-nucleus scattering, we naturally explain the newly reported event excess at high recoil energy with the LUX-ZEPLIN (LZ) experiment.

    hep-ph0 citations
  25. 26

    Can Elastic Neutrino Scattering Account for the LZ230616 Event?

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

    Recently, the LUX-ZEPLIN (LZ) Collaboration reported an isolated nuclear-recoil event at , in a region where the expected background is very small and conventional elastic dark matter (DM)-nucleus scattering cannot readily account for such a localized feature. We investigate whether LZ230616 could instead originate from coherent elastic neutrino-nucleus scattering (CENS). We consider neutrino-nucleus interactions within and beyond the Standard Model, together with exotic neutrino fluxes from DM annihilation () or decay () into neutrino pairs and from primordial black hole (PBH) evaporation. We show that kinematic considerations, the accompanying low energy recoil spectrum, and existing constraints exclude a viable interpretation of LZ230616 in terms of elastic neutrino-nucleus scattering for all scenarios considered.

    hep-phhep-ex0 citations
  26. 27

    Decoding the Imprints of Energy-Momentum Squared Gravity in Neutron Stars with Machine Learning Analysis

    Sayantan Ghosh🇮🇳 · Premachand Mahapatra🇮🇳 · Dipti Deb🇮🇳

    Neutron stars (NSs) provide a unique laboratory for testing gravity in the strong-field regime and for searching for deviations from General Relativity (GR). In this work, we investigate the effects of Energy-Momentum Squared Gravity (EMSG) on NS structure and examine whether its signatures can be identified from observable stellar properties using supervised machine learning (ML). We solve the modified Tolman-Oppenheimer-Volkoff equations for approximately nuclear equations of state (EOSs) for EMSG coupling parameters , and calculate the gravitational mass , radius , dimensionless tidal deformability , and fundamental -mode oscillation frequency for each stellar configuration. Imposing observational constraints on , , and , we split our datasets into train and test sets, and we employ Random Forest (RF), K-Nearest Neighbors (KNN), Support Vector Machine (SVM), Logistic Regression (LR), and Gaussian Naive Bayes (GNB) to classify the representative sectors using . The RF classifier performs best, achieving an accuracy of approximately with precision, recall, and F1-scores exceeding , while KNN also achieves accuracy above . The nearly diagonal confusion matrices demonstrate that the observationally viable NS configurations associated with different EMSG sectors remain highly separable in the multidimensional observable space. Our results show that NS observables retain robust signatures of EMSG even after observational filtering, establishing ML-assisted NS observations as a promising complementary approach for probing modified gravity with current and future multi-messenger observations.

    astro-ph.HEgr-qchep-phnucl-th0 citations
  27. 28

    Reconstructing sign-switching dark energy histories: Scalar-field regularity, conditional potential comparison, and representative dynamics

    Shahnawaz A. Adil🇲🇽 · Özgür Akarsu🇹🇷 · Mariam Bouhmadi-López🇪🇸 · Beñat Ibarra-Uriondo🇪🇸 · Nihan Katırcı🇹🇷 · J. Alberto Vázquez🇲🇽

    Phenomenologically similar sign-switching dark-energy histories need not have comparable scalar-field realizations. We reconstruct minimally coupled scalars with fixed kinetic sign for three prescribed histories: the error-function model (ECDM), the compact smooth-step model (SSCDM), and the ladder-like model (LCDM). Continuous negative-to-positive density crossings select the phantom branch. ECDM yields a smooth on-shell potential at every finite redshift; its equation-of-state pole at the density zero is only a ratio singularity. Exact SSCDM has a regular trajectory but a , non- endpoint potential, . Its non-Lipschitz force permits delayed departures from frozen plateaus, so the reconstructed potential and plateau data do not uniquely generate the prescribed history. The exact Ladder requires distributional kinetic stress and has no ordinary classical realization in the adopted one-field action. In conditional synthetic comparisons, the sigmoid--Gaussian family ranks highest for ECDM and the generalized axion-like family for SSCDM, although the fitted axion exponents imply a divergent endpoint force. Representative regular forward solutions exhibit negative-to-positive scalar-density crossings, with the potential zero preceding the density zero. In a closure test, unretuned evolution of the top-ranked ECDM template tracks the target approximately, . Closure fails structurally for compact SSCDM: no potential with a locally Lipschitz force can reproduce its exact finite-duration frozen plateaus from exactly frozen initial data. Field-map existence, invertibility, and endpoint regularity must be assessed before interpreting a phenomenological history as scalar dynamics. The phantom action is used only as a homogeneous effective proxy.

    gr-qcastro-ph.COhep-ph0 citations
  28. 29

    Universal Entanglement Dynamics of Unitary Operators

    Ian Low🇺🇸 · Navin McGinnis🇺🇸

    The entangling power of a unitary operator acting on a bipartite Hilbert space measures the entanglement it generates from product states, averaged over the inputs. A finite-dimensional unitary has a spectral decomposition , where are the eigenvalues, the corresponding eigen-projectors, and is the number of distinct eigenvalues. After removing an overall phase, the entangling power is a function on the -torus of relative eigenphases at fixed spectral projectors. We prove that this function is stationary at all points on the torus where every relative phase is or , which we define as \textit{corners}. Up to an overall phase, at each corner is a generalized reflection satisfying , where is the sum of spectral projectors whose relative phase is . At the corner the entangling power is expressed in terms of seven local-unitary invariants of . A unitary gate can be realized as a corner of some projector family if and only if , a condition satisfied by many Clifford and non-Clifford gates. We illustrate the theorem with two-qubit gates, channel decompositions, and two-site spin chains, obtaining examples of minima, maxima, and saddle points. In addition, a corner that is a saddle point on the full phase torus can appear as a local maximum or minimum along different time-evolution trajectories.

    quant-phhep-phhep-thnucl-th0 citations
  29. 30

    Bounds on scattering amplitudes of non-identical scalar particles in 4d

    Gabriele Ferretti🇸🇪 · Denis Karateev🇨🇭 · Alessandro Piazza🇮🇹 · Marco Serone🇮🇹

    We initiate the study of two-to-two scattering amplitudes involving two distinct scalar particles in spacetime dimensions using the primal S-matrix bootstrap. We impose a global symmetry under which the two particles are the lightest ones carrying charges and , guaranteeing their absolute stability and absence of triangular anomalous thresholds. For unequal masses, the presence of a pseudo-physical cut whose discontinuity is not directly constrained by physical unitarity qualitatively changes the bootstrap problem. We find several observables to be unbounded, while others obey non-trivial one-sided bounds or become bounded once another observable is fixed. In the equal-mass limit, where the pseudo-physical region disappears, two-sided bounds are recovered. As a proof of concept, we show that supplying information about the pseudo-physical discontinuity through an Omnès parametrisation also restores boundedness. Our results provide a starting point for future studies of physical processes such as pion-kaon and pion-nucleon scattering.

    hep-thhep-phnucl-th0 citations
  30. 31

    Ruling out matter-induced bumps in black-hole effective potentials

    Matteo Della Rocca🇮🇹 · Romeo Felice Rosato🇮🇹 · Paolo Pani🇮🇹

    Matter fields localized around black holes can produce small secondary bumps in the effective potentials governing black-hole perturbations, potentially leading to quasinormal-mode spectral instabilities and late-time echoes. Considering physically motivated models of anisotropic fluids surrounding a spherically symmetric black hole, we show that the appearance of such a secondary bump is accompanied by either singular matter profiles or divergent characteristic speeds in the fluid. These features indicate that the corresponding matter configurations are unphysical. We further demonstrate that a secondary bump in the effective potential does not necessarily imply the existence of additional light rings in the spacetime.

    gr-qcastro-ph.HEhep-ph0 citations
  31. 32

    Cosmological Collider Signals From a Triangle Loop

    Zhehan Qin🇨🇳 · Zhong-Zhi Xianyu🇨🇳

    Triangular loop signals appear frequently in cosmological collider models but their analytical forms remain unknown due to multiple technical challenges. Here, we determine for the first time the leading analytical cosmological collider signals generated by a massive scalar triangle loop in inflationary bispectrum and trispectrum. Combining a directional cutting rule with partial Mellin-Barnes representations, we obtain both the local and nonlocal trispectrum signals in a soft limit and derive the leading signal in the squeezed bispectrum. Remarkably, all these signals are reproduced by the corresponding bubble diagram with a single effective pinched coupling. Signals beyond leading order and cases with arbitrary internal masses, spins, and interactions can be generated within the same framework. Our approach also provides a systematic route to extracting analytical loop signals from general cosmological correlators.

    hep-thastro-ph.COhep-ph0 citations
  32. 33

    Bell tests for collider decay processes

    Danilo M. Fucci🇬🇧 · Alexandre C. Orthey Jr.🇧🇷 · Alan J. Barr🇬🇧 · Christopher G. Timpson🇬🇧

    We propose Bell tests for collider decays using independently sampled analysis axes as settings and detector regions to assign binary or null outcomes. We show that a Bell violation requires postselection, opening a loophole. However, under measurement independence and operational equivalence of acceptance events across settings, any local model exploiting the loophole must be nonclassical in the sense of measurement contextuality. We derive a Bell inequality violated by singlet correlations when the effective spin-analyzing powers are sufficiently high. Its violation then witnesses Bell nonlocality or measurement contextuality.

    quant-phhep-exhep-ph0 citations
  33. 34

    MUSES workflows for pQCD constraints on dense matter with finite quark masses

    Isabella Danhoni🇺🇸 · Mateus Reinke Pelicer🇺🇸 · Débora Mroczek🇺🇸 · Yumu Yang🇺🇸 · Mauricio Hippert🇧🇷 · Jacquelyn Noronha-Hostler🇺🇸

    We present a modular implementation of next-to-leading order (NLO) perturbative QCD (pQCD) thermodynamics with finite strange quark mass in the MUSES Calculation Engine, enabling reproducible connections between high-density QCD calculations and neutron star observables. Using this implementation, we investigate the interplay between flavor symmetry and physically motivated renormalization-scale prescriptions in cold, -equilibrated quark matter. We compare prescriptions associated with the conserved-charge , isospin , and Cartan bases, and show that their different symmetry properties at finite perturbative order can significantly affect the predicted flavor composition. In particular, while the and prescriptions yield the same reduced -equilibrated \eos{} for , they can predict different flavor compositions, whereas the prescription generates additional contributions to the charge-neutrality condition and develops strong scale dependence at low chemical potentials. We then apply stability and causality constraints to investigate the effect of the strange quark mass on the neutron star \eos{}. In an exploratory benchmark at ~GeV and fixed fiducial renormalization scale, increasing the fixed strange quark mass from to ~MeV reduces the fraction of \eos{} in our prior that is incompatible with the pQCD constraint from 51\% to 36\% and qualitatively changes the region of \eos{} space that is selected, retaining greater support for stiffer behavior. These results motivate systematic studies of strange quark mass and renormalization-scale uncertainties in pQCD constraints. The MUSES implementation provides a modular framework for such extensions and for future higher-order calculations.

    nucl-thastro-ph.HEhep-ph0 citations
  34. 35

    BRST quantization for the restoration of broken symmetries: a pedagogical example

    Pranav Sharma🇺🇸 · R.J. Furnstahl🇺🇸

    We present a pedagogical showcase of BRST quantization for restoring symmetries in nuclear many-body systems as a reformulation and potential alternative to conventional projection methods. The formalism is illustrated using translational invariance for a simple system of two interacting masses in one dimension, but with an eye toward generalizing to more particles, higher dimensions, and other symmetries. We explain the considerations underlying particular choices within the BRST construction, and develop both Hamiltonian and path integral formulations to provide guidance for the variety of many-body and effective field theory contexts where gauge fixing for symmetry restoration might be useful. For the demonstration system we show how to diagonalize within the extended BRST phase space, how variation after projection is recovered for product reference states, how the corresponding gauge-fixed functional integral is constructed, and how collective zero modes are isolated and controlled. Throughout, we keep in mind extensions of BRST symmetry to various approximation schemes as a guide for consistent symmetry restoration.

    nucl-thhep-phquant-ph0 citations
  35. 36

    Pulsar Timing Response and Spatial Correlations of Shear Modes in Torsionless Palatini Spacetime

    Tian-Shi Li🇨🇳 · Yu-Mei Wu🇨🇳 · Chang Liu🇨🇳

    In the nanohertz band, spatial correlations between pulsar timing residuals provide a key observable for characterizing stochastic gravitational-wave backgrounds and probing their polarization content. In torsionless Palatini spacetime, nonmetricity can generate two additional shear modes, referred to as the shear- and shear- modes. In this work, we investigate the pulsar timing response produced by the shear-induced motions of the emitting pulsar and the receiving Earth. Assuming that the electromagnetic field is minimally coupled to the physical metric and that the Earth and pulsar possess non-negligible effective hypermomentum responses, we derive the single-pulsar redshift, the frequency-domain two-point correlation function, and the corresponding spatial correlation. For a stationary and isotropic stochastic shear background, the normalized overlap reduction function (ORF) for distinct pulsars reduces in the short-wavelength limit to the pure dipolar form , where is the angular separation between the two pulsars. The same dipolar correlation can also be produced by isotropic Solar System ephemeris errors, leading to a spatial degeneracy between the two signals. This degeneracy highlights the importance of information beyond the angular correlation for identifying Palatini shear signatures in PTA data.

    gr-qcastro-ph.COhep-ph0 citations

Affiliations

first authorsco-authorsvia INSPIRE