PaperPanorama

HEP Phenomenology·hep-ph

Mon·Sep 7, 2020

25 papers18 primary·7 cross-listed·reconstructed*

  1. 01*

    Gravitational wave signatures from discrete flavor symmetries

    Graciela B. Gelmini🇺🇸 · Silvia Pascoli🇬🇧 · Edoardo Vitagliano🇺🇸 · Ye-Ling Zhou🇬🇧

    Non-Abelian discrete symmetries have been widely used to explain the patterns of lepton masses and flavor mixing. In these models, a given symmetry is assumed at a high scale and then is spontaneously broken by scalars (the flavons), which acquire vacuum expectation values. Typically, the resulting leading order predictions for the oscillation parameters require corrections in order to comply with neutrino oscillation data. We introduce such corrections through an explicit small breaking of the symmetry. This has the advantage of solving the cosmological problems of these models without resorting to inflation. The explicit breaking induces an energy difference or "bias" between different vacua and drives the evolution of the domain walls, unavoidably produced after the symmetry breaking, towards their annihilation. Importantly, the wall annihilation leads to gravitational waves which may be observed in current and/or future experiments. We show that a distinctive pattern of gravitational waves with multiple overlapped peaks is generated when walls annihilate, which is within the reach of future detectors. We also show that cosmic walls from discrete flavor symmetries can be cosmologically safe for any spontaneous breaking scale between 1 and GeV, if the bias is chosen adequately, without the need to inflate the walls away. We use as an example a particular model in which an explicit breaking is included in right-handed neutrino mass terms.

    hep-phastro-ph.COJCAP(2021)·56 citations
  2. 02*

    Deuteron production in AuAu collisions at GeV via pion catalysis

    Dmytro Oliinychenko🇺🇸 · Chun Shen🇺🇸 · Volker Koch🇺🇸

    We study deuteron production using no-coalescence hydrodynamic + transport simulations of central AuAu collisions at GeV. Deuterons are sampled thermally at the transition from hydrodynamics to transport, and interact in transport dominantly via reactions. The measured proton, Lambda, and deuteron transverse momentum spectra and yields are reproduced well for all collision energies considered. We further provide a possible explanation for the measured minimum in the energy dependence of the coalescence parameter, as well as for the difference between for deuterons and that for anti-deuterons, .

    hep-phPRC(2021)·54 citations
  3. 03*

    Quantum Boltzmann equation for fermions: An attempt to calculate the NMR relaxation and decoherence times using quantum field theory techniques

    Hassan Manshouri🇮🇷 · Ahmad Hoseinpour🇮🇷 · Moslem Zarei🇮🇷

    Extracting macroscopic properties of a system from microscopic interactions has always been an interesting topic with the most diverse applications. Here, we use the quantum Boltzmann equation to investigate the density matrix evolution of a system of nucleons. Using the quantum field theory tools for constructing the density matrix operators and calculating the interactions is the main advantage of this equation. The right-hand side of this equation involves forward scattering and usual collision terms. As examples of application, we calculate the standard Bloch equations for the nucleon system in the presence of a constant and an oscillating magnetic field from the forward scattering term. We find the longitudinal and transverse (decoherence) relaxation times from the collision term by considering the nucleon-nucleon scattering.

    hep-phcond-mat.quant-gasquant-phPRD(2021)·4 citations
  4. 04*

    Deciphering the charged heavy quarkoniumlike states in chiral effective field theory

    Bo Wang🇨🇳 · Lu Meng🇨🇳 · Shi-Lin Zhu🇨🇳

    We generalize the framework of chiral effective field theory to study the interactions of the isovector and systems up to the next-to-leading order, in which the long-, mid-, and short-range force contributions as well as the - wave mixing are incorporated. Based on the Lippmann-Schwinger equation, we fit the invariant mass distributions of the elastic channels measured by the BESIII and Belle Collaborations. Our results indicate that the four charged charmoniumlike and bottomoniumlike states , and , can be well identified as the and molecular resonances. The bound state explanations are vetoed in our framework. Our study favors the and states are the twin partners under the heavy quark symmetry.

    hep-phhep-exhep-latnucl-thPRD(2020)·30 citations
  5. 05*

    Investigating Bottom-Quark Yukawa Interaction at Higgs Factory

    Qi Bi🇨🇳 · Kangyu Chai🇨🇳 · Jun Gao🇨🇳 · Yiming Liu🇨🇳 · Hao Zhang🇨🇳

    Measuring the fermion Yukawa coupling constants is important for understanding the origin of the fermion masses and its relationship to the spontaneously electroweak symmetry breaking. On the other hand, some new physics models will change the Lorentz structure of the Yukawa interactions between the standard model (SM) fermions and the SM-like Higgs boson even in their decoupling limit. Thus the precisely measurement of the fermion Yukawa interactions is a powerful tool of new physics searching in the decoupling limit. In this work, we show the possibility of investigating the Lorentz structure of the bottom-quark Yukawa interaction with the 125GeV SM-like Higgs boson at future colliders.

    hep-phhep-exCPC(2021)·9 citations
  6. 06*

    Progress on 3+1D Glasma simulations

    Andreas Ipp🇦🇹 · David I. Müller🇦🇹

    We review our progress on 3+1D Glasma simulations to describe the earliest stages of heavy-ion collisions. In our simulations we include nuclei with finite longitudinal extent and describe the collision process as well as the evolution of the strongly interacting gluonic fields in the laboratory frame in 3+1 dimensions using the colored particle-in-cell method. This allows us to compute the 3+1 dimensional Glasma energy-momentum tensor, whose rapidity dependence can be compared to experimental pion multiplicity data from RHIC. An improved scheme cures the numerical Cherenkov instability and paves the way for simulations at higher energies used at LHC.

    hep-phhep-latnucl-thEPJA(2020)·22 citations
  7. 07*

    Numerical package for solving the JIMWLK evolution equation in C++

    Piotr Korcyl🇩🇪

    Precise and detailed knowledge of the internal structure of hadrons is one of the most actual problems in elementary particle physics. In view of the planned high energy physics facilities, in particular, the Electron-Ion Collider constructed in Brookhaven National Laboratory, the Chinese Electron-Ion Collider of China, or upgraded versions of CERN's LHC experiments, it is important to prepare adequate theoretical tools to compare and correctly interpret experimental results. One of the model frameworks allowing to estimate hadron structure functions is the combination of the McLerran-Venugopalan initial condition model together with the JIMWLK equation which describes the evolution in rapidity of the initial distribution. In this package, we present a parallel C++ implementation of both these ingredients. In order to allow a thorough assessment of systematic effects, several discretizations of the JIMWLK kernel are implemented both in position and momentum spaces. The effects of the running coupling in three different definitions are provided. The main code is supplemented with test and check programs for all main functionalities. The clear structure of the code allows easy implementation of further improvements such as the collinear constraint.

    hep-ph3 citations
  8. 08*

    Primordial gravitational waves in a minimal model of particle physics and cosmology

    Andreas Ringwald🇩🇪 · Ken'ichi Saikawa🇯🇵 · Carlos Tamarit🇩🇪

    In this paper we analyze the spectrum of the primordial gravitational waves (GWs) predicted in the Standard Model*Axion*Seesaw*Higgs portal inflation (SMASH) model, which was proposed as a minimal extension of the Standard Model that addresses five fundamental problems of particle physics and cosmology (inflation, baryon asymmetry, neutrino masses, strong CP problem, and dark matter) in one stroke. The SMASH model has a unique prediction for the critical temperature of the second order Peccei-Quinn (PQ) phase transition up to the uncertainty in the calculation of the axion dark matter abundance, implying that there is a drastic change in the equation of state of the universe at that temperature. Such an event is imprinted on the spectrum of GWs originating from the primordial tensor fluctuations during inflation and entering the horizon at , which corresponds to , pointing to a best frequency range covered by future space-borne GW interferometers. We give a precise estimation of the effective relativistic degrees of freedom across the PQ phase transition and use it to evaluate the spectrum of GWs observed today. It is shown that the future high sensitivity GW experiment -- ultimate DECIGO -- can probe the nontrivial feature resulting from the PQ phase transition in this model.

    hep-phastro-ph.COgr-qcJCAP(2021)·44 citations
  9. 09*

    On the mechanism of tetraquark production

    Rafał Maciuła🇵🇱 · Wolfgang Schäfer🇵🇱 · Antoni Szczurek🇵🇱

    We discuss the production mechanism of a new state, a putative fully charm tetraquark, observed recently by the LHCb at M = 6.9 GeV in the channel. Both single parton scattering (SPS) and double parton scattering (DPS) mechanisms are considered. We calculate the distribution in the invariant mass of the four-quark system for SPS and DPS production of in the -factorization approach with modern unintegrated gluon distribution functions (UGDFs). The so-calculated contribution of DPS is almost two orders of magnitude larger than the SPS one, but the tetraquark formation mechanism is unknown at present. Imposing a mass window around the resonance position we calculate the corresponding distribution in -- the potential tetraquark transverse momentum. The cross section for the continuum is calculated in addition, again including SPS (box diagrams) and DPS contributions which are of similar size. The formation probability is estimated trying to reproduce the LHCb signal-to-background ratio. The calculation of the SPS fusion mechanism is performed in the -factorization approach assuming different spin scenarios ( and ). The assignment is preferred over the one by the comparison of the transverse momentum distribution of signal and background with the LHCb preliminary data assuming the SPS mechanism dominance. There is no reliable approach for the DPS formation mechanism of tetraquarks at present as this is a complicated multi-body problem.

    hep-phhep-exPLB(2021)·83 citations
  10. 10*

    Calculating the rates of charmonium dissociation and recombination reactions in heavy-ion collisions using Bateman equation

    Abdulla Abdulsalam (Department of Physics, King Abdulaziz University, Jeddah)🇸🇦

    The charmonium states with their different binding energies and radii dissolve at different temperatures of the medium produced in relativistic heavy-ion collisions. Relative yields of charmonium and thus their survival have potential to map the properties of Quark Gluon Plasma. In this study, we estimate the combined effect of color screening, gluon-induced dissociation and recombination on charmonium production in heavy-ion collisions (Pb+Pb ions) at centre of mass energy () = 5.02 TeV. The rate equations of dissociation and recombination are solved separately with a 2-dimensional accelerated expansion of fireball volume. To solve the recombination rate equation, we have used an approach of Bateman solution which ensures the dissociation of the recombined charmonium in the QGP medium. The modifications of charmonium states are estimated in an expanding QGP with the conditions relevant for Pb+Pb collisions at LHC.

    hep-phNPA(2021)·6 citations
  11. 11*

    Explanation of the Neutral Current Anomalies

    B.C. Allanach (DAMTP, University of Cambridge)🇬🇧

    We investigate a speculative short-distance force, proposed to explain discrepancies observed between measurements of certain neutral current decays of hadrons and their Standard Model predictions. The force derives from a spontaneously broken, gauged extension to the Standard Model, where the extra quantum numbers of Standard Model fields are given by third family baryon number minus second family lepton number. The only fields beyond those of the Standard Model are three right-handed neutrinos, a gauge field associated with and a Standard Model singlet complex scalar which breaks , a `flavon'. This simple model, via interactions involving a TeV scale force-carrying vector boson, can successfully explain the neutral current anomalies whilst accommodating other empirical constraints. In an ansatz for fermion mixing, a combination of up-to-date anomaly fits, LHC direct search limits and other bounds rule out the domain 0.15 TeV 1.9 TeV at the 95 confidence level. For more massive s, the model possesses a {\em flavonstrahlung}\ signal, where collisions produce a and a flavon, which subsequently decays into two Higgs bosons.

    hep-phhep-exEPJC(2021)·49 citations
  12. 12*

    Jet suppression from small to large radius

    Daniel Pablos🇳🇴

    The angular dependence of jet suppression encodes key information about the process of energy and momentum hydrodynamization, and for this reason can be used to greatly improve our understanding of fundamental aspects of the jet/QGP interaction. In this work we study jet suppression from small to very large radius, for low and very high energy jets at the LHC and RHIC. We use the hybrid strong/weak coupling model for jet quenching that combines perturbative shower evolution with an effective strongly coupled description of the energy and momentum transfer from the jet into the QGP. Because of energy-momentum conservation, the wake created by the jet enhances or depletes the yield of particles generated at the freeze-out hypersurface depending on their orientation with respect to the direction of the jet. We find that jet suppression is remarkably independent of the anti- radius R, specially at LHC, first slightly increasing by opening R, then at larger values of R slowly decreasing. This nearly independence of jet suppression with R arises from two competing effects, namely the larger energy loss of the energetic jet components, which tends to increase suppression, against the partial recovery of the lost energy due to medium response, which reduces suppression. We find that the boosted medium from the recoiling jet depletes the amount of QGP in the direction opposite to it in the transverse plane, inducing energy loss due to an over-subtraction effect. We show that this unique signature of the hydrodynamization of part of the jet energy can be scrutinized by selecting samples of dijet configurations with different relative rapidities between the leading and the subleading jet.

    hep-phnucl-thPoS(2021)·3 citations
  13. 13*

    Simulation-Assisted Decorrelation for Resonant Anomaly Detection

    Kees Benkendorfer🇺🇸 · Luc Le Pottier🇺🇸 · Benjamin Nachman🇺🇸

    A growing number of weak- and unsupervised machine learning approaches to anomaly detection are being proposed to significantly extend the search program at the Large Hadron Collider and elsewhere. One of the prototypical examples for these methods is the search for resonant new physics, where a bump hunt can be performed in an invariant mass spectrum. A significant challenge to methods that rely entirely on data is that they are susceptible to sculpting artificial bumps from the dependence of the machine learning classifier on the invariant mass. We explore two solutions to this challenge by minimally incorporating simulation into the learning. In particular, we study the robustness of Simulation Assisted Likelihood-free Anomaly Detection (SALAD) to correlations between the classifier and the invariant mass. Next, we propose a new approach that only uses the simulation for decorrelation but the Classification without Labels (CWoLa) approach for achieving signal sensitivity. Both methods are compared using a full background fit analysis on simulated data from the LHC Olympics and are robust to correlations in the data.

    hep-phhep-exphysics.data-anstat.MLPRD(2021)·75 citations
  14. 14*

    Positivity in electron-positron scattering: testing the axiomatic quantum field theory principles and probing the existence of UV states

    Benjamin Fuks🇫🇷 · Yiming Liu🇨🇳 · Cen Zhang🇨🇳 · Shuang-Yong Zhou🇨🇳

    We consider the positivity bounds on dimension-8 four-electron operators and study two related phenomenological aspects at future lepton colliders. First, if positivity is violated, probing such violations will revolutionize our understanding of the fundamental pillars of quantum field theory and the -matrix theory. We observe that positivity violation at scales of 1--10 TeV can potentially be probed at future lepton colliders even if one assumes that dimension-6 operators are also present. Second, the positive nature of the dimension-8 parameter space often allows us to either directly infer the existence of UV-scale particles together with their quantum numbers or exclude them up to certain scales in a model-independent way. In particular, dimension-8 positivity plays an important role in the test of the Standard Model. If no deviations from the Standard Model are observed, it allows for simultaneous exclusion limits on all kinds of potential UV-complete models. Unlike the dimension-6 case, these limits apply regardless of the UV model setup and cannot be removed by possible cancellations among various UV contributions. This thus consists of a novel and universal test to confirm the Standard Model. We demonstrate with realistic examples how all the previously mentioned possibilities, including the test of positivity violation, can be achieved. Hence, we provide an important motivation for studying dimension-8 operators more comprehensively.

    hep-phhep-exhep-thCPC(2021)·57 citations
  15. 15*

    A study of collider signatures for two Higgs doublet models with a Pseudoscalar mediator to Dark Matter

    J. M. Butterworth🇬🇧 · M. Habedank🇩🇪 · P. Pani🇩🇪 · A. Vaitkus🇺🇸

    Two Higgs doublet models with an additional pseudoscalar particle coupling to the Standard Model and to a new stable, neutral particle, provide an attractive and fairly minimal route to solving the problem of Dark Matter. They have been the subject of several searches at the LHC. We study the impact of existing LHC measurements on such models, first in the benchmark regions addressed by searches and then after relaxing some of their assumptions and broadening the parameter ranges considered. In each case we study how the new parameters change the potentially visible signatures at the LHC, and identify which of these signatures should already have had a significant impact on existing measurements. This allows us to set some first constraints on a number of so far unstudied scenarios.

    hep-phhep-exSciPost Phys.Core(2021)·20 citations
  16. 16*

    Mixed NNLO QCD x electroweak corrections of O(N_f \alpha_s \alpha) to single-W/Z production at the LHC

    Stefan Dittmaier🇩🇪 · Timo Schmidt🇩🇪 · Jan Schwarz🇩🇪

    First results on the radiative corrections of order O(N_f\alpha_s\alpha) are presented for the off-shell production of W or Z bosons at the LHC, where N_f is the number of fermion flavours. These corrections comprise all diagrams at O(\alpha_s\alpha) with closed fermion loops, form a gauge-invariant part of the next-to-next-to-leading-order corrections of mixed QCD x electroweak type, and are the ones that concern the issue of mass renormalization of the W and Z resonances. The occurring irreducible two-loop diagrams, which involve only self-energy insertions, are calculated with current standard techniques, and explicit analytical results on the electroweak gauge-boson self-energies at O(\alpha_s\alpha) are given. Moreover, the generalization of the complex-mass scheme for a gauge-invariant treatment of the W/Z resonances is described for the order O(\alpha_s\alpha). While the corrections, which are implemented in the Monte Carlo program RADY, are negligible for observables that are dominated by resonant W/Z bosons, they affect invariant-mass distributions at the level of up to 2% for invariant masses of >500 GeV and are, thus, phenomenologically relevant. The impact on transverse-momentum distributions is similar, taking into account that leading-order predictions to those distributions underestimate the spectrum.

    hep-phJHEP(2020)·53 citations
  17. 17*

    Pion condensation in the early Universe at nonvanishing lepton flavor asymmetry and its gravitational wave signatures

    Volodymyr Vovchenko🇺🇸 · Bastian B. Brandt🇩🇪 · Francesca Cuteri🇩🇪 · Gergely Endrődi🇩🇪 · Fazlollah Hajkarim🇩🇪 · Jürgen Schaffner-Bielich🇩🇪

    We investigate the possible formation of a Bose-Einstein condensed phase of pions in the early Universe at nonvanishing values of lepton flavor asymmetries. A hadron resonance gas model with pion interactions, based on first-principle lattice QCD simulations at nonzero isospin density, is used to evaluate cosmic trajectories at various values of electron, muon, and tau lepton asymmetries that satisfy the available constraints on the total lepton asymmetry. The cosmic trajectory can pass through the pion condensed phase if the combined electron and muon asymmetry is sufficiently large: , with little sensitivity to the difference between the individual flavor asymmetries. Future constraints on the values of the individual lepton flavor asymmetries will thus be able to either confirm or rule out the condensation of pions during the cosmic QCD epoch. We demonstrate that the pion condensed phase leaves an imprint both on the spectrum of primordial gravitational waves and on the mass distribution of primordial black holes at the QCD scale e.g. the black hole binary of recent LIGO event GW190521 can be formed in that phase.

    hep-phastro-ph.COhep-latPRL(2021)·65 citations
  18. 18*

    Dark Fluxes from Accreting Black Holes and Direct Detections

    Rong-Gen Cai🇨🇳 · Sichun Sun🇮🇹 · Bing Zhang🇺🇸 · Yun-Long Zhang🇯🇵

    We discuss the possibility that accreting black hole systems can be sources for dark matter flux through several different mechanisms. We firstly discuss two types of systems: coronal thermal plasmas around supermassive black holes in active galactic nuclei (AGNs), and accretion disks of stellar-mass X-ray black hole binaries (BHBs). We explore how these black hole systems may produce keV light dark matter fluxes and find that the dark fluxes from those sources might be too weak to account for the current XENON1T excess. On the other hand, black holes can be good accelerators to accrete and boost heavy dark matter particles. If considering collisions or dark electromagnetism, those particles can then escape and reach the benchmark speed of 0.1c at the detector. We also extend the black hole mass region to primordial black holes (PBHs) and discuss the possibility of contributing to keV light dark flux via superradiance of PBHs.

    hep-phastro-ph.HEgr-qcEPJC(2022)·10 citations
  19. 19*

    Odd-spin glueballs, AdS/QCD and information entropy

    D. Marinho Rodrigues🇧🇷 · R. da Rocha🇧🇷

    Odd-spin glueballs in the dynamical AdS/QCD model are scrutinized, in the paradigm of the configurational entropy (CE). Configurational-entropic Regge trajectories, that relate the CE underlying odd-spin glueballs to their mass spectra and spin, are then engendered. They predict the mass spectra of odd-spin glueballs, besides pointing towards the configurational stability of odd-spin glueball resonances. The exponential modified dilaton with logarithmic anomalous dimensions comprises the most suitable choice to derive the mass spectra of odd-spin glueballs, compatible to lattice QCD. It is then used in a hybrid paradigm that takes both lattice QCD and the AdS/QCD correspondence into account.

    hep-thhep-phPLB(2020)·9 citations
  20. 20*

    Pulsars with NenuFAR: backend and pipelines

    L. Bondonneau · J.-M. Grießmeier · G. Theureau · I. Cognard · M. Brionne · V. Kondratiev · A.Bilous · J. W. McKee · P. Zarka · C. Viou · L. Guillemot · S. Chen and 18 other authors

    NenuFAR (New extension in Nançay upgrading LoFAR) is a new radio telescope developed and built on the site of the Nançay Radio Observatory. It is designed to observe the largely unexplored frequency window from 10 to 85\,MHz, offering a high sensitivity across its full bandwidth. NenuFAR has started its "early science" operation in July 2019, with 58\% of its final collecting area being available. Pulsars are one of the major topics for the scientific exploitation of this frequency range and represent an important challenge in terms of instrumentation. Designing instrumentation at these frequencies is complicated by the need to compensate for the effects of both the interstellar medium and the ionosphere on the observed signal. Our real-time pipeline LUPPI (Low frequency Ultimate Pulsar Processing Instrumentation) is able to cope with a high data rate and to provide real-time coherent de-dispersion down to the lowest frequencies reached by NenuFAR (10\,MHz). The full backend functionality is described, as well as the main pulsar observing modes (folded, single-pulse, waveform, and dynamic spectrum). This instrumentation allowed us to detect 172 pulsars in our first targeted search below 85\,MHz, including 10 millisecond pulsars (6 of which detected for the first time below 100 MHz). We also present some of the "early science" results of NenuFAR on pulsars: a high frequency resolution mapping of PSR B191921's emission profile and a detailed observation of single-pulse sub-structures from PSR~B080974 down to 16\,MHz, the high rate of giant-pulse emission from the Crab pulsar detected at 68.7\,MHz (43 events/min), and the illustration of the very good timing performance of the instrumentation, allowing us to study dispersion measure variations in great detail.

    astro-ph.IMhep-phphysics.ins-detAstron.Astrophys.(2021)·24 citations
  21. 21*

    Teaching gauge theory to first year students

    Nils-Erik Bomark🇳🇴

    One of the biggest revelations of 20th century physics, is virtually unheard of outside the inner circles of particle physics. This is the gauge theory, the foundation for how all physical interactions are described and a guiding principle for almost all work on new physics theories. Is it not our duty as physicists to try and spread this knowledge to a wider audience? Here, two simple gauge theory models are presented that should be understandable without any advanced mathematics or physics and it is demonstrated how they can be used to show how gauge symmetries are used to construct the standard model of particle physics. This is also used to describe the real reason we need the Higgs field. Though these concepts are complicated and abstract, it seems possible for at least first year students to understand the main ideas. Since they typically are very interested in cutting edge physics, they do appreciate the effort and enjoy the more detail insight into modern particle physics. These results are certainly encouraging more efforts in this direction.

    physics.ed-phhep-exhep-phphysics.hist-ph0 citations
  22. 22*

    Flavor ratios of astrophysical neutrinos interacting with stochastic gravitational waves having arbitrary spectra

    Maxim Dvornikov (IZMIRAN)🇷🇺

    We study the evolution and oscillations of fixed massive neutrinos interacting with stochastic gravitational waves (GWs). The energy spectrum of these GWs is Gaussian, with the correlator of the amplitudes being arbitrary. We derive the equation for the density matrix for flavor neutrinos in this case. In the two flavors approximation, this equation can be solved analytically. We find the numerical solution for the density matrix in the general case of three neutrino flavors. We consider merging binary black holes as sources of stochastic GWs with realistic spectra. Both normal and inverted mass orderings are analyzed. We discuss the relaxation of the neutrino fluxes in stochastic GWs emitted mainly by supermassive black holes. In this situation, we obtain the range of energies and the propagation lengths for which the relaxation process is the most efficient. We discuss the application of our results for the observation of fluxes of astrophysical neutrinos.

    astro-ph.HEhep-phJCAP(2020)·11 citations
  23. 23*

    -attractors from supersymmetry breaking

    Yermek Aldabergenov🇹🇭 · Auttakit Chatrabhuti🇹🇭 · Hiroshi Isono🇹🇭

    We construct new models of inflation and spontaneous supersymmetry breaking in de Sitter vacuum, with a single chiral superfield, where inflaton is the superpartner of the goldstino. Our approach is based on hyperbolic Kähler geometry, and a gauged (non-axionic) symmetry rotating the chiral scalar field by a phase. The gauge field combines with the angular component of the chiral scalar to form a massive vector, and single-field inflation is driven by the radial part of the scalar. We find that in a certain parameter range they can be approximated by simplest Starobinsky-like (E-model) -attractors, thus predicting and within CMB constraints. Supersymmetry (and -symmetry) is broken at a high scale with the gravitino mass GeV, and the fermionic sector also includes a heavy spin- field. In all the considered cases the inflaton is the lightest field of the model.

    hep-thgr-qchep-phEPJC(2021)·8 citations
  24. 24*

    Initial State Summary of Hard Probes 2020

    Bjoern Schenke🇺🇸

    The description of the initial state of heavy ion collisions, which covers the description of the incoming nuclei, the initial hard and soft interactions, the resulting spatial geometry of the produced matter, as well as the dynamic approach to a medium well described by hydrodynamics, has important consequences for the study of hard and electromagnetic probes. I will review new developments presented at Hard Probes 2020 that have an impact on these aspects of our understanding of the initial state of heavy ion and smaller system collisions.

    nucl-thhep-phnucl-ex0 citations
  25. 25*

    On the rate of core collapse supernovae in the Milky Way

    Karolina Rozwadowska🇮🇹 · Francesco Vissani🇮🇹 · Enrico Cappellaro🇮🇹

    Several large neutrino telescopes, operating at various sites around the world, have as their main objective the first detection of neutrinos emitted by a gravitational collapse in the Milky Way. The success of these observation programs depends on the rate of supernova core collapse in the Milky Way, . In this work, standard statistical techniques are used to combine several independent results. Their consistency is discussed and the most critical input data are identified. The inference on is further tested and refined by including direct information on the occurrence rate of gravitational collapse events in the Milky Way and in the Local Group, obtained from neutrino telescopes and electromagnetic surveys. A conservative treatment of the errors yields a combined rate (100 yr); the corresponding time between core collapse supernova events turns out to be ~yr. The importance to update the analysis of the stellar birthrate method is emphasized.

    astro-ph.HEastro-ph.GAastro-ph.SRhep-ex+1New Astron.(2021)·193 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.