PaperPanorama

HEP Phenomenology·hep-ph

Fri·Mar 22, 2024

21 papers13 primary·8 cross-listed·reconstructed*

  1. 01*

    Background-Induced Forces from Dark Relics

    Sergio Barbosa🇧🇷 · Sylvain Fichet🇧🇷

    Light particles quadratically coupled to nucleons induce macroscopic forces in matter. While a quantum effect always exists, an additional force occurs in the presence of a finite density of the light particles. We compute and classify such background-induced forces for particles of spin in the framework of effective field theory. We show that, at short distance, the background-induced forces exhibit a universal behavior that depends solely on the moments of the phase space distribution function of the light particles. We compute the forces in the case of dark particles densities that may realistically occur in cosmology, assuming either cosmically homogeneous or virialized phase space distributions. For homogeneous distributions -- analogous to cosmic neutrinos, all the background-induced forces remain, unlike the quantum ones, exponentially unsuppressed at large distance, implying that large scale fifth force experiments are highly sensitive to dark relics. Moreover at zero mass the forces from dark bosons are generically enhanced with respect to their quantum counterpart due to Bose-Einstein distribution. Overall, we find that the resulting fifth force bounds can compete with those from quantum forces. For virialized distributions -- identifiable as cold dark matter, the reach is also enhanced beyond the dark matter Compton wavelength. We obtain significant bounds on sub-keV scalar cold dark matter, that can appear in certain cosmological scenarios. A thorough adaptation of the results from the Eöt-Wash experiment may produce powerful additional bounds.

    hep-phJHEP(2025)·26 citations
  2. 02*

    Magnetic Moment of as Molecular Pentaquark State

    Halil Mutuk🇹🇷

    Motivated by the observation of state, in this study considering has a molecular structure, we calculate magnetic moment of this state in quark model. The magnetic moment of a hadron gives valuable information about the internal structure and shape deformations. We observe that orbital excitation of molecular state change the results of magnetic moment significantly. We also observe that light quarks in molecular state determine magnetic moment. Measurement of the magnetic moment of can clarify the nature of this state and be useful to identify the quantum numbers.

    hep-phhep-exhep-lat3 citations
  3. 03*

    Tripartite entanglement in decays

    J. A. Aguilar-Saavedra🇪🇸

    The decays of the Higgs boson produce a state in which the spins of the decay products and the orbital angular momentum () are highly entangled. We obtain the tripartite density operator, as well as reduced operators, for the decay into two weak bosons. For in the four-lepton final state we also estimate the statistical sensitivity at the Large Hadron Collider and future upgrades, using a binned method to reconstruct the density operators from distributions. With the expected Run 3 data, establishing genuine tripartite entanglement would be possible beyond the level. The violation of Bell inequalities involving the spins of the two weak bosons could also be established beyond the level.

    hep-phPRD(2024)·50 citations
  4. 05*

    Smooth -Hybrid and Non-Minimal Higgs Inflation in With Observable Gravitational Waves

    Umer Zubair🇺🇸

    We propose to study a smooth variant of the -hybrid inflation model and a non-minimal Higgs model of inflation with quartic non-minimal coupling between the Higgs field and gravity within the context of a realistic GUT gauge group based on supersymmetric . These models are incorporated with a realistic scenario of reheating and non-thermal leptogenesis, compatible with the constraints from the baryon asymmetry of the universe. Notably, both models successfully address the MSSM -problem and avoid the issue of primordial magnetic monopoles. Our analysis reveals that both models predict a scalar spectral index that closely aligns with the central observationally favored value of Planck2018 + BICEP2/Keck Array (BK15) data and yield a large tensor-to-scalar ratio (), potentially detectable in forthcoming CMB experiments.

    hep-phJCAP(2025)·6 citations
  5. 06*

    Approximate SU(5), Fine Structure Constants

    Holger Bech Nielsen🇩🇰

    We fit the three finestructure constants of the Standard Model with three, in first approximation theoretically estimable parameters, 1) a "unifiedscale",turning out not equal to the Planck scale and thus only estimable by a very speculative story, 2) a "number of layers" being a priori the number of families, and 3) a unified coupling related to a critical coupling on a lattice. So formally we postdict the three fine structure constants! In the philosophy of our model there is a physically lattice theory with link variables taking values in a (or in the various) "small" representations of the Standard Model Group. We argue for that these representations functio in first approximation as were the theory a genuine theory. Next we take into account fluctuation of the gauge fields in the lattice and obtain a correction to the a priori approximation, because of course the link fluctuations not corresponding any Standard model Lie algebra, but only to the SU(5), do not exist. The model is a development of our old anti-grand-unification model having as its genuine gauge group, close to fundamental scale, a cross product of the standard model group S(U(3)x U(2)) with itself, there being one Cartesian product factor for each family. In these old works we included the hypotesis of "multiple point criticallity principle" which here effectively means the coupling constants be critical on the lattice. Counted relative to the Higgs scale we suggest the in our sense "unified scale" (where the deviations between the inverse fine structure constants deviate by quantum fluctuations being only from standard model groups, not SU(5)) makes up the 2/3 th power of the Planck scale relative to the Higgs scale, or better the top quark mass scale.

    hep-phhep-latUniverse(2025)·6 citations
  6. 07*

    Radiative inverse seesaw model with hidden gauge symmetry enhancing lepton

    Takaaki Nomura🇨🇳 · Hiroshi Okada🇯🇵

    We propose a new inverse seesaw model based on hidden local symmetry framework where inverse seesaw mechanism is induced at one loop level. A Majorana mass term of singlet fermion is forbidden by the symmetry and it is generated at one-loop level by introducing relevant particle contents to get loop diagram, inducing inverse seesaw mechanism. The same particle contents also contribute to lepton magnetic(electric) dipole moment and lepton flavor violating decays without chiral suppression. We can then obtain sizable muon anomalous magnetic dipole moment that accommodate with deviation from the standard model prediction. The constraints from lepton flavor violating decays and electron magnetic(electric) dipole moment are also discussed to explore testability of the model.

    hep-phPRD(2025)·4 citations
  7. 08*

    Study of electron-positron annihilation into within resonance chiral theory

    Bing-Hai Qin🇨🇳 · Wen Qin🇨🇳 · Ling-Yun Dai🇨🇳

    In this paper, a coherent study of the annihilation into , and is carried out within the framework of resonance chiral theory. The amplitudes are fixed by fitting to the experimental cross-section and invariant mass spectrum. With these amplitudes, one can calculate the hadronic vacuum polarization form factors of these processes. The leading order contributions of to the anomalous magnetic moment of the muon, , is obtained as up to GeV.

    hep-phnucl-thPRD(2025)·12 citations
  8. 09*

    Constraining scalars of through proton decays in non-renormalisable models

    Saurabh K. Shukla🇮🇳

    Non-renormalisable versions of \, based on irreducible representations with lesser degrees of freedom, are free of running into the catastrophe of non-perturbativity of standard model gauge couplings in contrast to the renormalisable versions having tensors with many degrees of freedom. is the smallest representation, participates in Yukawa Lagrangian at the non-renormalisable level, contributing to the charged and neutral fermion masses, and has six distinct scalars with different charges. We computed the leptoquark and diquark couplings of different pairs of scalars stemming from all possible decomposition of the term resulting from the coupling of with the dimensional fermion multiplet of ,\, i.e. . Computing the tree and loop level contribution of different pairs to the effective dimension six, conserving operators, it turns out only three pairs, viz , and , and can induce proton decay at tree level. Assuming that the Yukawa couplings of the are comparable to those of the of a realistic model and setting the cutoff scale to the Planck scale typically constrains the breaking scale to be orders of magnitude less than the cutoff scale . Moreover, analysing the branching pattern of the leading two-body decay modes of the proton, we observed a preference for the proton to decay into second-generation mesons due to the hierarchical nature of Yukawa couplings. In a realistic \, scenario, we find that TeV, while could be as light as a few TeV.

    hep-phhep-thNPB(2025)·3 citations
  9. 10*

    Five-flavour scheme predictions for at next-to-leading order accuracy

    Rikkert Frederix🇸🇪 · Tetiana Moskalets🇩🇪

    We compute top quark pair production in association with a bottom quark pair at the LHC within the five-flavour scheme, matched to a parton shower, employing the FxFx merging scheme for production with up to 2 jets at NLO accuracy. To enhance the selection efficiency for the events with -jets within the inclusive five-flavour sample, we augment the generation probability of bottom quark flavours in the short-distance event generation. Our analysis reveals some differences from NLO predictions within the four-flavour scheme.

    hep-phEPJC(2024)·3 citations
  10. 11*

    Magnetic corrections to the QCD coupling: strong field approximation

    Gabriela Fernández🇲🇽 · Luis A. Hernández🇲🇽 · R. Zamora🇨🇱

    We compute the 1-loop vertex function of the QCD coupling in the presence of an ultra intense magnetic field. From the vertex function, we extract the effective coupling and show that it grows with increasing magnetic field. We consider the quark-gluon vertex and the three-gluon vertex, accounting for the propagators of charged particles within the loops using the lowest Landau level approximation in order to satisfy the condition where the magnetic field is the largest energy scale. Under this approximation, we find that the contribution from the three-gluon vertex vanishes. Therefore, this result arises from the competition between the color charge associated to gluons and to quarks as well, with the former being larger than the latter. The behavior of the QCD coupling as a function of the magnetic field strength is analogous to that exhibited by the light-quark condensate, indicating the magnetic catalysis occurs. This increasing behavior stems from the dominant contribution of color charge associated to gluons in the vertex function.

    hep-phhep-thPRD(2024)·7 citations
  11. 12*

    A subtraction scheme for processes involving fragmentation functions at NLO

    M. S. Zidi🇩🇿 · J. Ph. Guillet🇫🇷 · I. Schienbein🇫🇷 · H. Zaraket🇫🇷

    We present a novel subtraction method to remove the soft and collinear divergences at next-to-leading order for processes involving an arbitrary number of fragmentation functions, where this method acts directly in the hadronic centre-of-mass frame. We provide the analytical formulae of the subtraction terms in the general case where all the final state partons fragment to hadrons and for the two special cases when one of the partons of the final state does not fragment, i.e. it is a photon or involved in a jet.

    hep-phEPJC(2024)·5 citations
  12. 13*

    New physics in spin entanglement

    Mateusz Duch🇮🇹 · Alessandro Strumia🇮🇹 · Arsenii Titov🇮🇹

    We propose a theory that preserves spin-summed scattering and decay rates at tree level while affecting particle spins. This is achieved by breaking the Lorentz group in a non-local way that tries avoiding stringent constraints, for example leaving unbroken the maximal sub-group SIM(2). As a phenomenological application, this new physics can alter the spins of top-antitop pairs (and consequently their entanglement) produced in collisions without impacting their rates. Some observables affected by loops involving top quarks with modified entanglement receive corrections.

    hep-phhep-exhep-thquant-phEPJC(2025)·21 citations
  13. 14*

    PINNferring the Hubble Function with Uncertainties

    Lennart Röver🇩🇪 · Björn Malte Schäfer🇩🇪 · Tilman Plehn🇩🇪

    The Hubble function characterizes a given Friedmann-Robertson-Walker spacetime and can be related to the densities of the cosmological fluids and their equations of state. We show how physics-informed neural networks (PINNs) emulate this dynamical system and provide fast predictions of the luminosity distance for a given choice of densities and equations of state, as needed for the analysis of supernova data. We use this emulator to perform a model-independent and parameter-free reconstruction of the Hubble function on the basis of supernova data. As part of this study, we develop and validate an uncertainty treatment for PINNs using a heteroscedastic loss and repulsive ensembles.

    astro-ph.COastro-ph.IMhep-ph13 citations
  14. 15*

    Higgs radial modes and the UV completion of non-linear sigma models

    Giulio Marino🇮🇹

    We investigated non-linear sigma models with cosets G/H represented by , , and . These models exhibit a transition to a strongly coupled regime above a threshold energy scale , where the effective field theory approach breaks down. To address this issue, we introduced the so called Higgs radial modes within the Linear Sigma Model, crucial for restoring perturbative unitarity. Analyzing the case, we first notice that all radial modes coming from the most general irreducible representation of G are necessary for unitarizing scattering amplitudes and ensuring the weakly coupled nature of the theory. The phenomenology behind these extra radial modes recalls the physics of the Higgs in the electroweak sector of the Standard Model. In the case of a model describing electroweak symmetry breaking with a more complex pattern, despite strict constraints from electroweak precision tests, these modes could stabilize the Higgs potential and be a possible solution for the vacuum instability issue.

    hep-thhep-ph0 citations
  15. 16*

    Hint of dark matter-dark energy interaction in DESI DR2 and current cosmological dataset?

    Amlan Chakraborty🇮🇳 · Tulip Ray🇮🇳 · Subinoy Das🇮🇳 · Arka Banerjee🇮🇳 · Vidhya Ganesan🇮🇳

    We present new constraints on an interacting dark matter-dark energy scenario motivated by string compactification, where a scalar field adiabatically tracks the minimum of an effective potential sourced by dark matter density. In this study, we focus on the Chameleon dark energy model and numerically solve the Klein-Gordon equation using a shooting algorithm to determine precise initial conditions such that the field rests at effective potential minima today. We perform a comprehensive Markov Chain Monte Carlo (MCMC) analysis using a combination of datasets, including Planck, BAO (SDSS and DESI DR2), Pantheon+, and SHES. Our analysis shows a mild preference for a higher non-zero dark sector coupling, compared to earlier works on similar models, for two particular combinations of datasets: (i) Planck + DESI DR2 BAO +.Pantheon+, (ii) Planck + SDSS BAO + Pantheon+ + SHES. Notably, the inclusion of DESI DR2 and SHES data increases the inferred interaction strength to (68\% C.L.) and yields weak and positive evidence in favor of the model over CDM, with and AIC= respectively. This model remains consistent with a phantom crossing at redshift , in agreement with the trend indicated by DESI observations. However, due to the settlement of the scalar field at the minima of the effective potential at the present epoch, the effective dark energy equation of state asymptotically approaches . leading to only weak evidence in favor of this model when analyzed using the DESI DR2 dataset.

    astro-ph.COgr-qchep-phhep-thApJ(2026)·22 citations
  16. 17*

    Conditional variational autoencoder inference of neutron star equation of state from astrophysical observations

    Márcio Ferreira🇵🇹 · Michał Bejger🇵🇱

    We present a new inference framework for neutron star astrophysics based on conditional variational autoencoders. Once trained, the generator block of the model reconstructs the neutron star equation of state from a given set of mass-radius observations. While the pressure of dense matter is the focus of the present study, the proposed model is flexible enough to accommodate the reconstructing of any other quantity related to dense matter equation of state. Our results show robust reconstructing performance of the model, allowing to make instantaneous inference from any given observation set.

    nucl-thastro-ph.HEhep-phPRD(2025)·9 citations
  17. 18*

    Probing modified Hawking evaporation with gravitational waves from the primordial black hole dominated universe

    Shyam Balaji🇬🇧 · Guillem Domènech🇩🇪 · Gabriele Franciolini🇨🇭 · Alexander Ganz🇩🇪 · Jan Tränkle🇩🇪

    It has been recently proposed that Hawking evaporation might slow down after a black hole has lost about half of its mass. Such an effect, called "memory burden", is parameterized as a suppression in the mass loss rate by negative powers of the black hole entropy and could considerably extend the lifetime of a black hole. We study the impact of memory burden on the Primordial Black Hole (PBH) reheating scenario. Modified PBH evaporation leads to a significantly longer PBH dominated stage. Requiring that PBHs evaporate prior enough to Big Bang Nucleosynthesis shrinks the allowed PBH mass range. Indeed, we find that for the PBH reheating scenario is not viable. The frequency of the Gravitational Waves (GWs) induced by PBH number density fluctuations is bound to be larger than about a Hz, while the amplitude of the GW spectrum is enhanced due to the longer PBH dominated phase. Interestingly, we show that, in some models, the slope of the induced GW spectrum might be sensitive to the modifications to Hawking evaporation, proving it may be possible to test the "memory burden" effect via induced GWs. Lastly, we argue that our results could also apply to general modifications of Hawking evaporation.

    gr-qcastro-ph.COhep-phJCAP(2024)·60 citations
  18. 19*

    Probing Primordial Black Holes and Dark Matter Clumps in the Solar System with Gravimeter and GNSS Networks

    Michal Cuadrat-Grzybowski🇳🇱 · Sébastien Clesse🇧🇪 · Pascale Defraigne🇧🇪 · Michel Van Camp🇧🇪 · Bruno Bertrand🇧🇪

    We show that Global Navigation Satellite Systems (GNSS) and gravimeters on Earth and in space can potentially offer the most accurate direct measurement of local density of near-Earth asteroid-mass Primordial Black Holes (PBHs) and Dark Matter (DM) clumps in the solar system by means of gravitational influence. Using semi-analytical methods and Monte Carlo simulation, this paper revisits the analysis of the trajectories of DM clumps in the solar system, including both captured objects and hyperbolic trajectories. A link is thus made between the frequency and distance of Earth overflights for a given mass flux, and a direct measure of dark matter clump density in the solar system. We then model the signature of a close flyby of a DM object on orbital data from GNSS satellites and gravity measurements from gravimeters. We thus obtain a first assessment of the single probe sensitivity. It paves the way for an exhaustive statistical analysis of 28 years of gravimeters and GNSS data to obtain observational constraints on the density of the PBHs and DM clumps within the solar system, for the mass range kg. In addition, our methodology offers a possibility of direct detection in cases where DM clumps are endowed with an additional long-range clump-matter fifth-force beyond gravity.

    astro-ph.COastro-ph.EPgr-qchep-phPRD(2024)·16 citations
  19. 20*

    An On-Shell Derivation of the Soft Effective Action in Abelian Gauge Theories

    Temple He🇺🇸 · Prahar Mitra🇳🇱 · Allic Sivaramakrishnan🇺🇸 · Kathryn M. Zurek🇺🇸

    We derive the soft effective action in -dimensional abelian gauge theories from the on-shell action obeying Neumann boundary conditions at timelike and null infinity and Dirichlet boundary conditions at spatial infinity. This allows us to identify the on-shell degrees of freedom on the boundary with the soft modes living on the celestial sphere. Following the work of Donnelly and Wall, this suggests that we can interpret soft modes as entanglement edge modes on the celestial sphere and study entanglement properties of soft modes in abelian gauge theories.

    hep-thhep-phPRD(2024)·15 citations
  20. 21*

    Qu8its for Quantum Simulations of Lattice Quantum Chromodynamics

    Marc Illa🇺🇸 · Caroline E. P. Robin🇩🇪 · Martin J. Savage🇺🇸

    We explore the utility of qudits, qu8its, for quantum simulations of the dynamics of 1+1D SU(3) lattice quantum chromodynamics, including a mapping for arbitrary numbers of flavors and lattice size and a re-organization of the Hamiltonian for efficient time-evolution. Recent advances in parallel gate applications, along with the shorter application times of single-qudit operations compared with two-qudit operations, lead to significant projected advantages in quantum simulation fidelities and circuit depths using qu8its rather than qubits. The number of two-qudit entangling gates required for time evolution using qu8its is found to be more than a factor of five fewer than for qubits. We anticipate that the developments presented in this work will enable improved quantum simulations to be performed using emerging quantum hardware.

    quant-phhep-lathep-phnucl-thPRD(2024)·49 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.