PaperPanorama

HEP Phenomenology·hep-ph

Wed·Dec 16, 2020

37 papers25 primary·12 cross-listed·reconstructed*

  1. 01*

    Seiberg-Witten map Invariant Scatterings

    Duško Latas🇷🇸 · Josip Trampetić🇭🇷 · Jiangyang You🇭🇷

    We investigate Scattering amplitudes of the reversible -exact Seiberg-Witten (SW) map based noncommutative (NC) quantum electrodynamics, and show explicitly the SW map invariance for all tree-level NCQED proceses, including Möller, Bhabha, Compton, pair annihilation, pair production and light-by-light scatterings. We apply our NCQED results to the and exclusive processes, convoluted to the ultraperipheral lead Pb ion-ion collisions, recently measured by the ATLAS collaboration at LHC. We demonstrate that is the more appropriate channel to probe NC scale while both are less efficient than some other probes.

    hep-phPRD(2021)·10 citations
  2. 02*

    Invisible decays of axion-like particles: constraints and prospects

    Luc Darmé🇮🇹 · Federica Giacchino🇮🇹 · Enrico Nardi🇮🇹 · Mauro Raggi🇮🇹

    Axion-like particles (ALPs) can provide a portal to new states of a dark sector. We study the phenomenology of this portal when the ALP mainly decays invisibly, while its interaction with the standard model sector proceeds essentially via its coupling to electrons and/or photons. We re-analyse existing limits from various collider and beam dump experiments, including in particular ALP production via electron/positron interactions, in addition to the usual production through ALP-photon coupling. We further discuss the interplay between these limits and the intriguing possibility of explaining simultaneously the muon and electron magnetic moment anomalies. Finally, we illustrate the prospects of ALP searches at the LNF positron fixed-target experiment PADME, and the future reach of an upgraded experimental setup.

    hep-phhep-exJHEP(2021)·61 citations
  3. 03*

    Interacting color strings as the origin of the liquid behavior of the quark-gluon plasma

    J. E. Ramírez🇲🇽 · Bogar Díaz🇲🇽 · C. Pajares🇪🇸

    We study the radial distribution function of the color sources (strings) formed in hadronic collisions and the requirements to obtain a liquid. As a repulsive interaction is needed, we incorporate a concentric core in the strings as well as the probability that a string allows core-core overlaps. We find systems where the difference between the gas-liquid and confined-deconfined phase transition temperatures is small. This explains the experimentally observed liquid behavior of the quark-gluon plasma above the confined-deconfined transition temperature.

    hep-phcond-mat.stat-mechphysics.comp-phPRD(2021)·14 citations
  4. 04*

    Implications of the Dark-LMA solution for neutrino mass matrices

    Monojit Ghosh🇸🇪 · Srubabati Goswami🇮🇳 · Ananya Mukherjee🇮🇳

    In this work we have re-investigated two different kinds of texture zero ansatz of the low energy neutrino mass matrix in view of the Dark-Large-Mixing-Angle (DLMA) solution of the solar neutrino problem which can arise in the presence of non-standard interactions. In particular we revisit the cases of (i) one zero mass matrices when the lowest neutrino mass is zero and (ii) one zero texture with a vanishing minor. In our study we find that for most of the cases, the texture zero conditions which are allowed for the LMA solution, are also allowed for the DLMA solution. However, we found two textures belonging to the case of one zero texture with a vanishing minor where LMA solution does not give a viable solution whereas DLMA solution does. We analyze all the possible texture zero cases belonging to these two kinds of texture zero structures in detail and present correlations between different parameters. We also present the predictions for the effective neutrino mass governing neutrino-less double beta decay for the allowed textures.

    hep-phNPB(2021)·4 citations
  5. 05*

    Gamma Ray Signals from Cosmic Ray Scattering on Axion-Like Particles

    James B. Dent🇺🇸 · Bhaskar Dutta🇺🇸 · Jayden L. Newstead🇦🇺 · Alejandro Rodriguez🇺🇸 · Ian M. Shoemaker🇺🇸 · Zahra Tabrizi🇺🇸 · Natalia Tapia Arellano🇺🇸

    Dark Matter (DM) may be comprised of axion-like particles (ALPs) with couplings to photons and the standard model fermions. In this paper we study photon signals arising from cosmic ray (CR) electron scattering on background ALPs. For a range of masses we find that these bounds can place competitive new constraints on the ALP-electron coupling, although in many models lifetime constraints may supersede these bounds. In addition to current Fermi constraints, we also consider future e-Astrogram bounds which will have greater sensitivity to ALP-CR induced gamma-rays.

    hep-phPRD(2021)·17 citations
  6. 07*

    Dynamics of diffractive dissociation

    V.A.Khoze🇬🇧 · A.D.Martin🇬🇧 · M.G.Ryskin🇬🇧

    We describe a QCD based model which incorporates the main properties of the inclusive particle distributions expected for diffractive processes, including the diffractive dissociation at high energies. We study, in turn, the total cross section, , the differential elastic, , cross section, the dependence of the single proton dissociation cross section, , on the momentum fraction, , lost by the leading proton, the multiplicity distributions in inelastic (non-diffractive) collisions and in the processes of dissociation. Besides this we calculate the mean transverse momenta of the `wee partons' (secondaries) produced in the case of dissociation (that is in the processes with a large rapidity gap) and compare it with that in inelastic interactions.

    hep-phEPJC(2021)·10 citations
  7. 08*

    The proton inelastic cross section at ultrahigh energies

    Atri Bhattacharya🇧🇪 · Jean-René Cudell🇧🇪 · Rami Oueslati🇧🇪 · Arno Vanthieghem🇺🇸

    We study the consequences of high-energy collider data on the best fits to total, elastic, and inelastic cross sections for and scattering using two very distinct unitarisation schemes: the eikonal and the -matrix. Despite their analytic differences, we find that the two schemes lead to almost identical predictions up to EeV energies, with differences only becoming significant at GUT-scale and higher energies.

    hep-phPRD(2021)·5 citations
  8. 09*

    Stringy-Running-Vacuum-Model Inflation: from primordial Gravitational Waves and stiff Axion Matter to Dynamical Dark Energy

    Nick E. Mavromatos🇬🇧 · Joan Sola🇪🇸

    In previous works we have derived a Running Vacuum Model (RVM) for a string Universe, which provides an effective description of the evolution of 4-dimensional string-inspired cosmologies from inflation till the present epoch. In the context of this "stringy RVM" version, it is assumed that the early Universe is characterised by purely gravitational degrees of freedom, from the massless gravitational string multiplet, including the antisymmetric tensor field. The latter plays an important role, since its dual gives rise to a `stiff' gravitational-axion "matter", which in turn couples to the gravitational anomaly terms, assumed to be non-trivial at early epochs. In the presence of primordial gravitational wave (GW) perturbations, such anomalous couplings lead to an RVM-like dynamical inflation, without external inflatons. We review here this framework and discuss potential scenarios for the generation of such primordial GW, among which the formation of unstable domain walls, which eventually collapse in a non-spherical-symmetric manner, giving rise to GW. We also remark that the same type of "stiff" axionic matter could provide, upon the generation of appropriate potentials during the post-inflationary eras, (part of) the Dark Matter (DM) in the Universe, which could well be ultralight, depending on the parameters of the string-inspired model. All in all, the new (stringy) mechanism for RVM-inflation preserves the basic structure of the original (and more phenomenological) RVM, as well as its main advantages: namely, a mechanism for graceful exit and for generating a huge amount of entropy capable of explaining the horizon problem. It also predicts axionic DM and the existence of mild dynamical Dark Energy (DE) of quintessence type in the present universe, both being "living fossils" of the inflationary stages of the cosmic evolution.

    hep-phastro-ph.COgr-qchep-thEur.Phys.J.ST(2021)·78 citations
  9. 10*

    Neutrino oscillations and flavor theories

    José W. F. Valle🇪🇸

    I discuss neutrino mixing ansatze, such as the generalized Tri-bimaximal and bi-large mixing patterns, and their utility in describing the oscillation data. Unitarity tests and probes of the absolute neutrino mass scale are briefly discussed. A short overview of neutrino mass generation is given. I discuss an orbifold approach to the flavor problem and the resulting implications, e.g. the golden quark-lepton mass relation, neutrinoless double beta decay and neutrino oscillation predictions.

    hep-phhep-exhep-thPoS(2021)·0 citations
  10. 11*

    The theoretical description of the transverse momentum spectra: a unified model

    Rohit Gupta🇮🇳 · Anjaly Menon🇺🇸 · Shubhangi Jain🇮🇳 · Satyajit Jena🇮🇳

    Analysis of transverse momentum distributions is a useful tool to understand the dynamics of relativistic particles produced in high energy collision. Finding a proper distribution function to approximate the spectra is a vastly developing area of research in particle physics. In this work, we have provided a detailed theoretical description of the unified statistical framework in high energy physics. We have tested the applicability of this framework on experimental data by analysing the transverse momentum spectra of pion produced in heavy-ion collision at RHIC and LHC. We have also attempted to explain the transverse momentum spectra of charged hadrons formed in pp collision at different energies using the unified statistical framework. This formalism has been proved to nicely explain the spectra of particles produced in soft processes as well hard scattering processes in a consistent manner.

    hep-phUniverse(2023)·11 citations
  11. 13*

    New developments in SModelS

    Gaël Alguero🇫🇷 · Jan Heisig🇧🇪 · Charanjit K. Khosa🇮🇹 · Sabine Kraml🇫🇷 · Suchita Kulkarni🇦🇹 · Andre Lessa🇧🇷 · Philipp Neuhuber🇦🇹 · Humberto Reyes-González🇫🇷 · Wolfgang Waltenberger🇦🇹 · Alicia Wongel🇩🇪

    SModelS is an automatized tool enabling the fast interpretation of simplified model results from the LHC within any model of new physics respecting a symmetry. In this contribution, we report on two important updates of SModelS during 2020: the extension of the SModelS' database with 13 ATLAS and 10 CMS analyses, including 5 ATLAS and 1 CMS analyses at full Run~2 luminosity, and the ability to use full likelihoods now provided by ATLAS in the form of pyhf JSON files. Moreover, we briefly explain how to use SModelS and give an overview of ongoing developments.

    hep-phPoS(2021)·8 citations
  12. 14*

    PDFFlow: hardware accelerating parton density access

    Marco Rossi🇮🇹 · Stefano Carrazza🇮🇹 · Juan M. Cruz-Martinez🇮🇹

    We present PDFFlow, a new software for fast evaluation of parton distribution functions (PDFs) designed for platforms with hardware accelerators. PDFs are essential for the calculation of particle physics observables through Monte Carlo simulation techniques. The evaluation of a generic set of PDFs for quarks and gluons at a given momentum fraction and energy scale requires the implementation of interpolation algorithms as introduced for the first time by the LHAPDF project. PDFFlow extends and implements these interpolation algorithms using Google's TensorFlow library providing the possibility to perform PDF evaluations taking fully advantage of multi-threading CPU and GPU setups. We benchmark the performance of this library on multiple scenarios relevant for the particle physics community.

    hep-phcs.LGphysics.comp-phPoS(2021)·6 citations
  13. 15*

    Physics prospects with the second oscillation maximum at Deep Underground Neutrino Experiment

    Jogesh Rout🇮🇳 · Sheeba Shafaq🇮🇳 · Mary Bishai🇺🇸 · Poonam Mehta🇮🇳

    Current long-baseline neutrino-oscillation experiments such as NOA and T2K are mainly sensitive to physics in the neighbourhood of the first oscillation maximum of the oscillation probability. The future Deep Underground Neutrino Experiment (DUNE) utilizes a wide-band beam tune optimized for CP violation sensitivity that fully covers the region of the first maxima and part of the second. In the present study, we elucidate the role of second oscillation maximum in addressing issues pertaining to unknowns in the standard three flavour paradigm. We consider a new DUNE beam tune optimized for coverage of the region of the second oscillation maxima which could be realized using proposed accelerator upgrades that provide multi-MW of power at proton energies of 8 GeV. We find that addition of the multi-MW 8 GeV beam to DUNE wide-band running leads to modest improvement in sensitivity to CP violation, mass hierarchy, the octant of as well as the resolution of and the Jarlskog invariant. Significant improvements to the DUNE neutrino energy resolution yield a much larger improvement in performance. We conclude that the standard DUNE wide-band beam when coupled with excellent detector resolution capabilities is sufficient to resolve to better than for all values of in a decade of running. For second maxima (8 GeV 3MW) beam running concurrently with the standard wide-band (80 GeV 2.2 MW) beam for 5 of the 10 years, it is found that can be further resolved better than for all values of .

    hep-phPRD(2021)·16 citations
  14. 16*

    Hadronic Atom as a Key to Revealing the Mystery

    Zhen-Hua Zhang🇨🇳 · Feng-Kun Guo🇨🇳

    The , whose mass coincides with the threshold, is the most extended hadron object. Since its discovery in 2003, debates have never stopped regarding its internal structure. We propose a new object, the atom, which is the composite system with positive charge parity and a mass of MeV, formed mainly due to the Coulomb force. We show that a null signal of the atom can be used to put a lower limit on the binding energy of the . From the current knowledge of the properties, the production rate for the atom relative to the in decays and at hadron colliders should be at least . New insights into the will be obtained through studying the atom.

    hep-phhep-exnucl-exnucl-thPRL(2021)·19 citations
  15. 17*

    Multiplicity dependence of and meson production

    Marat Siddikov🇨🇱 · Iván Schmidt🇨🇱

    In this paper we analyze in detail the production of the and mesons in collisions. Using the color dipole framework, we estimated the cross-sections in the kinematics of ongoing and forthcoming experiments, and found that our estimates are in reasonable agreement with currently available experimental data. We also analyzed the dependence on multiplicity of co-produced hadrons and found that it is significantly milder than that of -wave quarkonia. We expect that the experimental confirmation of this result could constitute an important test of our understanding of multiplicity enhancement mechanisms in the production of different quarkonia states.

    hep-phPRD(2021)·8 citations
  16. 18*

    NLO QCD corrections to the production of top-antitop pairs in association with a W boson including leptonic decays

    Ansgar Denner🇩🇪 · Giovanni Pelliccioli🇩🇪

    We present the QCD radiative corrections to the full off-shell production, considering a final state with three charged leptons, two b jets and missing energy. All interferences, off-shell effects and spin correlations are included in the calculation. Beyond presenting integrated and differential results for the full off-shell process, we compare them with those obtained applying a double-pole approximation to the virtual corrections.

    hep-ph0 citations
  17. 19*

    Parametrizations of the Spin Density Matrix

    Elvio Di Salvo🇫🇷 · Ziad Jean Ajaltouni🇫🇷

    We propose for the spin density matrix two parametrizations which automatically fulfil the non-negativity conditions, without setting any bound on the parameters. The first one relies on a theorem, that we prove, and it is rather simple and easily adaptable to some specific reactions, where, for example, parity is conserved or angular momentum conservation entails selection rules. Moreover, in the case when the rank is less than the order of the density matrix, we show how to improve the fits to the data, either by implementing previous suggestions, or by elaborating an alternative method, for which we prove a second theorem. Our second parametrization is a variant of previous treatments, it appears suitable for some particular processes. Moreover, we discuss about the possibility of inferring the elements of the density matrix from the differential decay width. Last, we illustrate various examples of current interest, both in strong and weak decays; some of them may be helpful in the investigation of physics beyond the standard model.

    hep-phAnnals Phys.(2021)·3 citations
  18. 20*

    Explaining the SM flavor structure with grand unified theories

    Renato M. Fonseca🇨🇿

    We do not know why there are three fermion families in the Standard Model (SM), nor can we explain the observed pattern of fermion masses and mixing angles. Standard grand unified theories based on the SU(5) and SO(10) groups fail to shed light on this issue, since they also contain three copies of fermion representations of an enlarged gauge group. However, it does not need to be so: the Standard Model families might be distributed over distinct representations of a grand unified model, in which case the gauge symmetry itself might discriminate the various families and explain (at least partially) the flavor puzzle. The most ambitious version of this idea consists on embedding all SM fermions in a single irreducible representation of the gauge group.

    hep-phPoS(2021)·2 citations
  19. 21*

    The hierarchy problem and fine-tuning in a decoupling approach to multi-scale effective potentials

    Simone Biondini🇨🇭 · Daniël Boer🇳🇱 · Ruud Peeters🇳🇱

    In many realizations of beyond the Standard Model theories, new massive particles are introduced, leading to a multi-scale system with widely separated energy scales. In this setting the Coleman-Weinberg effective potential, which describes the vacuum of the theory at the quantum level, has to be supplemented with a prescription to handle the hierarchy in mass scales. In any quantum field theory involving scalar fields and multiple, highly differing mass scales, it is in general not possible to choose a single renormalization scale that will remove all the large logarithms in the effective potential. In this paper, we focus on the so-called decoupling method, which freezes the effects of heavy particles on the renormalization group running of the light degrees of freedom at low energies. We study this for a simple two-scalar theory and find that, while the decoupling method leads to an acceptable and convergent effective potential, the method does not solve the fine-tuning problem that is inherent to the hierarchy problem of multi-scale theories. We also consider an alternative implementation of the decoupling approach, which gives different results for the shape of the potential, but still leads to similar conclusions on the amount of fine-tuning in the model. We suggest a way to avoid running into this fine-tuning problem by adopting a prescription on how to fix parameters in such decoupling approaches.

    hep-phPRD(2021)·5 citations
  20. 22*

    Hadronization of correlated gluon fields

    Moritz Greif🇩🇪 · Carsten Greiner🇩🇪 · Simon Plätzer🇦🇹 · Björn Schenke🇺🇸 · Sören Schlichting🇩🇪

    Following an explicit example, we present the chain of steps required for an event-by-event description of hadron production in high energy hadronic and nuclear collisions. We start from incoming nuclei, described in the Color Glass Condensate effective theory, whose collision creates the gluon fields of the glasma. Individual gluons are then sampled from the gluon fields' Husimi (smeared Wigner) distributions, and clustered using a new spacetime based algorithm. Clusters are fed into the Herwig event generator, which performs the hadronization, conserving energy and momentum. We discuss the physical implications of smearing and problems with the quasi particle picture for the studied processes. We compute spectra of charged hadrons and identified particles and their azimuthal momentum anisotropies, and address systematic uncertainties on observables, resulting from the general lack of detailed knowledge of the hadronization mechanism.

    hep-phnucl-thPRD(2021)·8 citations
  21. 23*

    SuperTracer: A Calculator of Functional Supertraces for One-Loop EFT Matching

    Javier Fuentes-Martin🇩🇪 · Matthias König🇩🇪 · Julie Pagès🇨🇭 · Anders Eller Thomsen🇨🇭 · Felix Wilsch🇨🇭

    We present SuperTracer, a Mathematica package aimed at facilitating the functional matching procedure for generic UV models. This package automates the most tedious parts of one-loop functional matching computations. Namely, the determination and evaluation of all relevant supertraces, including loop integration and Dirac algebra manipulations. The current version of SuperTracer also contains a limited set of output simplifications. However, a further reduction of the output to a minimal basis using Fierz identities, integration by parts, simplification of Dirac structures, and/or light field redefinitions might still be necessary. The code and example notebooks are publicly available at https://gitlab.com/supertracer/supertracer.

    hep-phJHEP(2021)·84 citations
  22. 24*

    Jet tagging in the Lund plane with graph networks

    Frédéric A. Dreyer🇬🇧 · Huilin Qu🇨🇭

    The identification of boosted heavy particles such as top quarks or vector bosons is one of the key problems arising in experimental studies at the Large Hadron Collider. In this article, we introduce LundNet, a novel jet tagging method which relies on graph neural networks and an efficient description of the radiation patterns within a jet to optimally disentangle signatures of boosted objects from background events. We apply this framework to a number of different benchmarks, showing significantly improved performance for top tagging compared to existing state-of-the-art algorithms. We study the robustness of the LundNet taggers to non-perturbative and detector effects, and show how kinematic cuts in the Lund plane can mitigate overfitting of the neural network to model-dependent contributions. Finally, we consider the computational complexity of this method and its scaling as a function of kinematic Lund plane cuts, showing an order of magnitude improvement in speed over previous graph-based taggers.

    hep-phcs.CVcs.LGhep-exJHEP(2021)·132 citations
  23. 25*

    Searching for Elusive Dark Sectors with Terrestrial and Celestial Observations

    Roberto Contino🇮🇹 · Kevin Max🇮🇹 · Rashmish K. Mishra🇺🇸

    We consider the possible existence of a SM-neutral and light dark sector coupled to the visible sector through irrelevant portal interactions. Scenarios of this kind are motivated by dark matter and arise in various extensions of the Standard Model. We characterize the dark dynamics in terms of one ultraviolet scale , at which the exchange of heavy mediator fields generates the portal operators, and by one infrared scale , setting the mass gap. At energies the dark sector behaves like a conformal field theory and its phenomenology can be studied model independently. We derive the constraints set on this scenario by high- and low-energy laboratory experiments and by astrophysical observations. Our results are conservative and serve as a minimum requirement that must be fulfilled by the broad class of models satisfying our assumptions, of which we give several examples. The experimental constraints are derived in a manner consistent with the validity of the effective field theory used to define the portal interactions. We find that high-energy colliders give the strongest bounds and exclude UV scales up to a few TeV, but only in specific ranges of the IR scale. The picture emerging from current searches can be taken as a starting point to design a future experimental strategy with broader sensitivity.

    hep-phJHEP(2021)·30 citations
  24. 26*

    Fluid velocity from transverse momentum spectra

    Anthony Guillen🇫🇷 · Jean-Yves Ollitrault🇫🇷

    We parametrize the transverse momentum distribution of outgoing hadrons in ultrarelativistic nucleus-nucleus collisions as a superposition of boosted thermal distributions. In this approach, which generalizes the conventional blast wave, the momentum distribution is determined by the distribution of the fluid velocity. We analyze the difference between this generalized blast-wave parametrization and a full hydrodynamic calculation. We then apply the generalized blast-wave fit to experimental data on Pb+Pb collisions at . The fit is reasonable up to , much beyond the range where hydrodynamics is usually applied, but not perfect. Based on the differences between the fit and the data, we argue that an ideal hydrodynamic calculation cannot fit simultaneously all identified particle spectra, irrespective of the specific implementation. In particular, data display a significant excess of pions at low , whose physical interpretation is discussed. Data also show that the distribution of the fluid velocity becomes broader as the collision becomes less central. This broadening is explained by event-by-event hydrodynamic calculations, where it results from the centrality dependence of initial-state fluctuations.

    nucl-thhep-phPRC(2021)·13 citations
  25. 27*

    Information evolution in the interior of an axially symmetric BTZ black hole

    Shad Ali🇨🇳 · Muhammad Arshad Kamran🇵🇰 · Misbah Ullah Khan🇵🇰

    In this paper, we consider an axially symmetric dimensional rotating Banados-Teitelboim-Zanelli (BTZ) black hole to investigate its interior \textbf{information}. First, we choose a largest space-like hyper-surface at and calculate the maximal interior volume bound by it. We found the interior volume to increase with advance time . Similarly, the \textbf{scalar} quantum mode entropy \textbf{is} also found to increase with advance time. Next\textbf{,} considering two important assumptions, an evolution relation is obtained between \textbf{the variation of scalar} quantum mode entropy and Bekenstein Hawking entropy \textbf{for an} infinitesimal interval of time. In contrast to the evolution relation of higher dimensional black holes, the characteristic feature of this relation is its increase with extremely large increase in black hole mass. Moreover, this work extends the notion of black hole evaporation idea to lower space-time dimensions.

    gr-qchep-phPhys.Scripta(2022)·3 citations
  26. 28*

    Limits on the abundance of millicharged particles bound to matter

    Gadi Afek🇺🇸 · Fernando Monteiro🇺🇸 · Jiaxiang Wang🇺🇸 · Benjamin Siegel🇺🇸 · Sumita Ghosh🇺🇸 · David C. Moore🇺🇸

    Millicharged particles (mCPs) are hypothesized particles possessing an electric charge that is a fraction of the charge of the electron. We report a search for mCPs with charges that improves sensitivity to their abundance in matter by roughly two orders of magnitude relative to previous searches. This search is sensitive to such particles over a wide range of masses and charges for which they can form stable bound states with matter, corresponding to a gap in parameter space that is beyond the reach of previous searches from accelerators, colliders, cosmic-ray experiments, and cosmological constraints.

    hep-exastro-ph.COhep-phphysics.ins-det+1PRD(2021)·40 citations
  27. 29*

    The sphaleron rate from Euclidean lattice correlators: an exploration

    Luis Altenkort🇩🇪 · Alexander M. Eller🇩🇪 · Olaf Kaczmarek🇩🇪 · Lukas Mazur🇩🇪 · Guy D. Moore🇩🇪 · Hai-Tao Shu🇩🇪

    We show how the sphaleron rate (the Minkowski rate for topological charge diffusion) can be determined by analytical continuation of the Euclidean topological-charge-density two-point function, which we investigate on the lattice, using gradient flow to reduce noise and provide improved operators which more accurately measure topology. We measure the correlators on large, fine lattices in the quenched approximation at with high precision. Based on these data we first perform a continuum extrapolation at fixed physical flow time and then extrapolate the continuum estimates to zero flow time. The extrapolated correlators are then used to study the sphaleron rate by spectral reconstruction based on perturbatively motivated models.

    hep-lathep-phPRD(2021)·42 citations
  28. 30*

    All order effective action for charge diffusion from Schwinger-Keldysh holography

    Yanyan Bu🇨🇳 · Tuna Demircik🇰🇷 · Michael Lublinsky🇮🇱

    An effective action for diffusion of a conserved charge is derived to all orders in the derivative expansion within a holographic model dual to the Schwinger-Keldysh closed time path. A systematic approach to solution of the 5D Maxwell equations in a doubled Schwarzschild-AdS black brane geometry is developed. Constitutive relation for the stochastic charge current is shown to have a term induced by thermal fluctuations (coloured noise). All transport coefficient functions parameterising the effective action and constitutive relations are computed analytically in the hydrodynamic expansion, and then numerically for finite momenta.

    hep-thhep-phnucl-thJHEP(2021)·29 citations
  29. 31*

    ,-odd effects for RaOH molecule in the excited vibrational state

    Anna Zakharova🇷🇺 · Alexander Petrov🇷🇺

    Triatomic molecule RaOH combines the advantages of laser-coolability and the spectrum with close opposite-parity doublets. This makes it a promising candidate for experimental study of the ,-violation. Previous studies concentrated on the calculations for different geometries without the averaging over the rovibrational wave function and stressed the possibility that the dependence of the , parameters on the bond angle may significantly alter the observed value. We obtain the rovibrational wave functions of RaOH in the ground electronic state and excited vibrational state using the close-coupled equations derived from the adiabatic Hamiltonian. The potential surface is constructed based on the two-component relativistic CCSD(T) computation employing the generalized relativistic effective core potential (GRECP) for the Radium atom. The averaged values of the parameters and describing the sensitivity of the system to the electron electric dipole moment and the scalar-pseudoscalar nucleon-electron interaction are calculated and the value of -doubling is obtained.

    physics.atom-phhep-phphysics.chem-phquant-phPRA(2021)·21 citations
  30. 32*

    The free and safe fate of symmetry non-restoration

    Borut Bajc🇸🇮 · Adrian Lugo🇦🇷 · Francesco Sannino🇩🇰

    We investigate the high temperature fate of four dimensional gauge-Yukawa theories featuring short distance conformality of either interacting or non-interacting nature. The latter is known as complete asymptotic freedom and, as templates, we consider non-abelian gauge theories featuring either two singlet scalars coupled to gauged fermions via Yukawa interactions or two gauged scalars with(out) fermions. For theories with interacting fixed points at short distance, known as asymptotically safe, we consider two calculable examples. Exploring the landscape of safe and free theories above we discover a class of complete asymptotically free theories for which symmetry breaks at arbitrary high temperatures. In its minimal form this class is constituted by a theory with two fundamental gauged scalars each gauged under an independent group.

    hep-thhep-phPRD(2021)·22 citations
  31. 33*

    Iterated integrals related to Feynman integrals associated to elliptic curves

    Stefan Weinzierl🇩🇪

    This talk reviews Feynman integrals, which are associated to elliptic curves. The talk will give an introduction into the mathematics behind them, covering the topics of elliptic curves, elliptic integrals, modular forms and the moduli space of marked points on a genus one curve. The latter will be important, as elliptic Feynman integrals can be expressed as iterated integrals on the moduli space , in same way as Feynman integrals which evaluate to multiple polylogarithms can be expressed as iterated integrals on the moduli space . With the right language, many methods from the genus zero case carry over to the genus one case. In particular we will see in specific examples that the differential equation for elliptic Feynman integrals can be cast into an -form. This allows to systematically obtain a solution order by order in the dimensional regularisation parameter.

    hep-thhep-ph12 citations
  32. 34*

    Chiral Torsional Effects in Anomalous Fluids in Thermal Equilibrium

    Juan L. Mañes🇪🇸 · Manuel Valle🇪🇸 · Miguel A. Vazquez-Mozo🇪🇸

    Using the similarity between spacetime torsion and axial gauge couplings, we study torsional contributions to the equilibrium partition function in a stationary background. In the case of a charged fluid minimally coupled to torsion, we spot the existence of linear torsional magnetic and vortical effects, while the axial-vector current and the spin energy potential do not receive corrections in the torsion at linear order. The covariant energy-momentum tensor, on the other hand, does contain terms linear in the torsion tensor. The case of a two-flavor hadronic superfluid is also analyzed, and the torsional contributions to the constitutive relations computed. Our results show the existence of a torsional electric chiral effect mediated by the charged pions.

    hep-thcond-mat.str-elhep-phJHEP(2021)·11 citations
  33. 35*

    Fast neutrino flavor conversions in one-dimensional core-collapse supernova models with and without muon creation

    Francesco Capozzi (MPP Munich and Virginia Tech)🇩🇪 · Sajad Abbar (MPP Munich)🇩🇪 · Robert Bollig (MPA Garching)🇩🇪 · H.-Thomas Janka (MPA Garching)🇩🇪

    In very dense environments, neutrinos can undergo fast flavor conversions on scales as short as a few centimeters provided that the angular distribution of the neutrino lepton number crosses zero. This work presents the first attempt to establish whether the non-negligible abundance of muons and their interactions with neutrinos in the core of supernovae can affect the occurrence of such crossings. For this purpose we employ state-of-the-art one-dimensional core-collapse supernova simulations, considering models that include muon-neutrino interactions as well as models without these reactions. Although a consistent treatment of muons in the equation of state and neutrino transport does not seem to modify significantly the conditions for the occurrence of fast modes, it allows for the existence of an interesting phenomenon, namely fast instabilities in the sector. We also show that crossings below the supernova shock are a relatively generic feature of the one-dimensional simulations under investigation, which contrasts with the previous reports in the literature. Our results highlight the importance of multi-dimensional simulations with muon creation, where our results must be tested in the future.

    astro-ph.HEhep-phPRD(2021)·68 citations
  34. 36*

    Quantum Field Theory at high multiplicity: The Higgsplosion mechanism

    Carlos Henrique de Lima🇧🇷

    This master thesis seeks to understand what happens to a Quantum Field Theory when we are in the high multiplicity regime. The motivation for this study comes from a newly (2017) proposed mechanism that would happen in scalar theories in this limit, the Higgsplosion. We review what is known so far about the perturbative results in this regime and some other results coming from different approaches. We study the consequences of this mechanism for a normal scalar theory and if it can happen in the Standard Model. The goal is to understand if this mechanism can really happen in usual field theory, this question will be answered in the perturbative regime because a more general solution is still unknown. Additionally, a new possible interpretation for the Higgsplosion mechanism is proposed and discussed.

    hep-thhep-ph0 citations
  35. 37*

    The achievements of the {\it spin-charge-family} theory so far

    N.S. Mankoc Borstnik🇸🇮

    Fifty years ago the {\it standard model} offered an elegant new step towards understanding elementary fermion and boson fields, making several assumptions, suggested by experiments. The assumptions are still waiting for an explanation. There are many proposals in the literature for the next step. The {\it spin-charge-family} theory, proposing a simple starting action in -dimensional space with fermions interacting with the gravity only (the vielbeins and the two kinds of the spin connection fields), is offering the explanation for not only all by the {\it standard model} assumed properties of quarks and leptons and antiquarks and antileptons, with the families included, of the vectors gauge fields, of the Higgs's scalar and Yukawa couplings, of the appearance of the {\it dark matter}, of the {\it matter-antimatter asymmetry}, making several predictions, but explains as well the second quantization postulates for fermions and bosons by using the odd and the even Clifford algebra ''basis vectors'' to describe the internal space of fermions and bosons, respectively. Consequently the single fermion and single boson states already anticommute and commute, respectively. I present in this talk a very short overview of the achievements of the {\it spin-charge-family} theory so far, concluding with presenting not yet solved problems, for which the collaborators are very welcome.

    physics.gen-phhep-ph5 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.