PaperPanorama

Nuclear Theory·nucl-th

Friday·December 20, 2019

16 papers6 primary·10 cross-listed

  1. 07

    Drag force to all orders in gradients

    Jared Reiten🇺🇸 · Andrey V. Sadofyev🇺🇸

    We study the energy loss of a heavy quark slowly moving through an evolving strongly coupled plasma. We use the linearized fluid/gravity correspondence to describe small perturbations of the medium flow with general spacetime dependence. This all order linearized hydrodynamics results in a drag force exerted on a heavy quark even when it is at rest with the fluid element. We show how the general contribution to the drag force can be derived order by order in the medium velocity gradients and provide explicit results valid up to the third order. We then obtain an approximate semi-analytic result for the drag force to all orders in the gradient expansion but linearized in the medium velocity. Thus, the effects of a class of hydrodynamic gradients on the drag force are re-summed, giving further insight into the dissipative properties of strongly coupled plasmas. The all order result allows us to study the drag force in the non-hydrodynamic regime of linear medium perturbations that vary rapidly in space and time.

    hep-thhep-phnucl-thJHEP(2020)·23 citations
  2. 08

    Global Fit to Modified Neutrino Couplings and the Cabibbo-Angle Anomaly

    Antonio M. Coutinho🇨🇭 · Andreas Crivellin🇨🇭 · Claudio Andrea Manzari🇨🇭

    Recently, discrepancies of up to between the different determinations of the Cabibbo angle were observed. This "Cabibbo-angle anomaly" could be explained by lepton flavour universality (LFU) violating New Physics (NP) in the neutrino sector. However, modified neutrino couplings to Standard Model gauge bosons also affect many other observables sensitive to LFU violation which have to be taken into account in order to assess the viability of this explanation. Therefore, we perform a model-independent global analysis in a Bayesian approach and find that the tension in the Cabibbo angle is significantly reduced, while the agreement with other data is also mostly improved. In fact, non-zero modifications of electron and muon neutrino couplings are preferred at more than 99\% CL. Still, since constructive effects in the muon sector are necessary, simple models with right-handed neutrinos (whose global fit we update as a by-product) cannot fully explain data, pointing towards more sophisticated NP models.

    hep-phhep-exhep-latnucl-ex+1PRL(2020)·135 citations
  3. 09

    Rapidity loss, spin and angular asymmetries in scattering of a quark from color field of a proton (nucleus)

    Jamal Jalilian-Marian🇺🇸

    We calculate the helicity amplitudes for scattering of a quark from both large and small gluons of a target proton or nucleus using spinor helicity formalism. We show that scattering from large gluons of the target results in non-zero spin asymmetry at intermediate as well as rapidity loss of the projectile quark. We comment on how this can also generate angular asymmetries in particle production in high energy collisions.

    hep-phnucl-thPRD(2020)·51 citations
  4. 10

    The Frame-Independent Spatial Coordinate : Implications for Light-Front Wave Functions, Deep Inelastic Scattering, Light-Front Holography, and Lattice QCD Calculations

    Gerald A. Miller🇺🇸 · Stanley J. Brodsky🇺🇸

    A general procedure for obtaining frame-independent, three-dimensional light-front coordinate-space wave functions is introduced. The third spatial coordinate, , is the frame independent coordinate conjugate to the light-front momentum coordinate which appears in the momentum-space light-front wave functions underlying generalized parton distributions, structure functions, distribution amplitudes, form factors, and other hadronic observables. These causal light-front coordinate-space wave functions are used to derive a general expression for the quark distribution function of hadrons as an integral over the frame-independent longitudinal distance (the Ioffe time) between virtual-photon absorption and emission appearing in the forward virtual photon-hadron Compton scattering amplitude. Specific examples using models derived from light-front holographic QCD show that the spatial extent of the proton eigenfunction in the longitudinal direction can have very large extent in .

    hep-phhep-latnucl-thPRC(2020)·38 citations
  5. 12

    Diffusion processes involving multiple conserved charges: a first study from kinetic theory and implications to the fluid-dynamical modeling of heavy ion collisions

    Jan A. Fotakis🇩🇪 · Moritz Greif🇩🇪 · Gabriel Denicol🇩🇪 · Harri Niemi🇧🇷 · Carsten Greiner🇫🇮

    The bulk nuclear matter produced in heavy ion collisions carries a multitude of conserved quantum numbers: electric charge, baryon number, and strangeness. Therefore, the diffusion processes associated to these conserved charges cannot occur independently and must be described in terms of a set of coupled diffusion equations. This physics is implemented by replacing the traditional diffusion coefficients for each conserved charge by a diffusion coefficient matrix, which quantifies the coupling between the conserved quantum numbers. The diagonal coefficients of this matrix are the usual charge diffusion coefficients, while the off-diagonal entries describe the diffusive coupling of the charge currents. In this paper, we show how to calculate this diffusion coefficient matrix from kinetic theory and provide results for a hadron resonance gas and a gas of partons. We further find that the off-diagonal entries can reach similar magnitudes compared to the diagonal entries. In order to provide some insight on the influence that the coupling between the net charge diffusion currents can have on heavy ion observables, we present first results for the diffusive evolution of a hadronic system in a simple (1+1)D-fluid dynamics approach, and study different configurations of the diffusion matrix.

    hep-phhep-thnucl-thPRD(2020)·70 citations
  6. 13

    Basic properties of GPDs and modelling of the latter

    Cédric Mezrag🇫🇷 · Nabil Chouika🇫🇷 · Hervé Moutarde🇫🇷 · Jose Rodriguez-Quintero🇪🇸

    We present here a new method based on the Radon transform to model Generalised Parton Distributions (GPDs). It allows to fulfil all theoretical constraints applying on GPDs, especially polynomiality and positivity at the same time. More specifically, we show how polynomiality can be systematically restored within the framework of the overlaps of Lightfront Wave Functions (LFWFs). It provides a systematic way to extend models defined solely in the DGLAP kinematical region to the ERBL one. We then exemplify our approach using LFWFs models.

    hep-phnucl-thPoS(2019)·0 citations
  7. 14

    Survey of deformation in nuclei in order to estimate the enhancement of sensitivity to atomic EDM

    Prajwal Mohanmurthy · Umesh Silwal · Durga P. Siwakoti · Jeff A. Winger

    The observed baryon asymmetry of the universe (BAU) cannot be explained by the known sources of charge-parity (CP)-violation in the Standard Model (SM). A non-zero permanent electric-dipole-moment (EDM) for fundamental particles, nuclei or atoms, violates CP. Measuring a non-zero EDM allows us to gain a handle on additional sources of CP-violation required to explain the observed BAU. The EDM of an atom with an octupole and quadrupole deformed nucleus is enhanced. Therefore, the search for such atoms has become important in the quest to measure an EDM. Viability of EDM searches in Ra atoms with a deformed nucleus have already been demonstrated. We have performed a comprehensive survey for possible EDM candidates from a list of octupole deformed nuclei predicted by various theoretical models. Our search of long-lived isotopes with nuclear deformations comparable to or better than Ra results in a handful of viable candidates for future atomic EDM experiments based out of the Facility for Rare Isotope Beams (FRIB): Rn, Fr, Ra, Ac, Th, and particularly Pa. Furthermore, nuclei of Rn, Fr and Ac are also highly quadrupole and octupole deformed, but their ground state parity doublet energy difference has not yet been measured.

    nucl-exnucl-thAIP Conf.Proc.(2020)·6 citations
  8. 15

    Postmerger Gravitational-Wave Signatures of Phase Transitions in Binary Mergers

    Lukas R. Weih🇩🇪 · Matthias Hanauske🇩🇪 · Luciano Rezzolla🇩🇪

    With the first detection of gravitational waves from a binary system of neutron stars, GW170817, a new window was opened to study the properties of matter at and above nuclear-saturation density. Reaching densities a few times that of nuclear matter and temperatures up to , such mergers also represent potential sites for a phase transition (PT) from confined hadronic matter to deconfined quark matter. While the lack of a postmerger signal in GW170817 has prevented us from assessing experimentally this scenario, two theoretical studies have explored the postmerger gravitational-wave signatures of PTs in mergers of binary systems of neutron stars. We here extend and complete the picture by presenting a novel signature of the occurrence of a PT. More specifically, using fully general-relativistic hydrodynamic simulations and employing a suitably constructed equation of state that includes a PT, we present the occurrence of a "delayed PT", i.e. a PT that develops only some time after the merger and produces a metastable object with a quark-matter core, i.e. a hypermassive hybrid star. Because in this scenario, the postmerger signal exhibits two distinct fundamental gravitational-wave frequencies -- before and after the PT -- the associated signature promises to be the strongest and cleanest among those considered so far, and one of the best signatures of the production of quark matter in the present Universe.

    gr-qcastro-ph.HEnucl-thPRL(2020)·211 citations
  9. 16

    Heavy-light flavour correlations of anisotropic flows at LHC energies within event-by-event transport approach

    Salvatore Plumari🇮🇹 · Gabriele Coci🇮🇹 · Vincenzo Minissale🇮🇹 · Santosh K. Das🇮🇳 · Yifeng Sun🇮🇹 · Vincenzo Greco🇮🇹

    The heavy quarks (HQs) are unique probe of the hot QCD matter properties and their dynamics is coupled to the locally thermalized expanding quark gluon plasma. We present here a novel study of the event by event correlations between light and heavy flavour flow harmonics at LHC energy within a transport approach. Interaction between heavy quarks and light quarks have been taken into account exploring the impact of different temperature dependence of the transport coefficients and . Our study indicates that correlation and the relative fluctuations of anisotropic flows, , are novel observables to understand the heavy quark-bulk interaction and are sensitive to the temperature dependence even to moderate differences of , or . Hence a comparison of such new observables for HQ to upcoming experimental data at both RHIC and LHC can put further constraints on heavy quark transport coefficients and in particular on its temperature dependence toward a solid comparison between the phenomenological determination and the lattice QCD calculations.

    hep-phnucl-thPLB(2020)·60 citations

Affiliations

first authorsco-authorsvia INSPIRE