PaperPanorama

Nuclear Theory·nucl-th

Monday·May 17, 2021

7 papers1 primary·6 cross-listed

  1. 02

    Physical characteristics of glasma from the earliest stage of relativistic heavy ion collisions

    Margaret E. Carrington🇨🇦 · Alina Czajka🇵🇱 · Stanislaw Mrówczyński🇵🇱

    We present analytic results that describe the gluon field, or glasma, at very early times after a collision of relativistic heavy ions at proper time . We use a Colour Glass Condensate approach, and perform an expansion in . The full details of our method are described in our previous paper [1]. In this paper we present an analysis of various physical quantities that can be obtained from the energy-momentum tensor. We show that the expansion to order can be trusted to about fm. For times small enough that the expansion converges, the transverse and longitudinal pressures move towards their equilibrium values of one third of the energy density. The Fourier coefficients of the azimuthal flow are larger than expected, which contradicts the usual assumption that anisotropy is mostly generated during the hydrodynamic evolution of the plasma. We find a significant correlation between the elliptic flow coefficient and the eccentricity, which indicates that the spatial asymmetry introduced by the initial geometry is effectively transmitted to the azimuthal distribution of the gluon momentum field, even at very early times. This result is interesting because correlations of this kind are characteristic of the onset of hydrodynamic behaviour. We show that the angular momentum of the glasma is orders of magnitude smaller than the angular momentum of the initial system of ions colliding with non-zero impact parameter. This indicates that most of the angular momentum carried by the valence quarks is not transmitted to the glasma, and contradicts the picture of a rapidly rotating initial glasma state that has been proposed by several authors, but agrees with the current lack of experimental evidence for a significant polarization effect of the hyperons and vector mesons produced in heavy ion collisions at the highest accessible energies.

    hep-phnucl-thPRC(2022)·30 citations
  2. 03

    Linking continuum and lattice quark mass functions via an effective charge

    Lei Chang🇨🇳 · Yu-Bin Liu🇨🇳 · Khépani Raya🇨🇳 · J. Rodríguez-Quintero🇪🇸 · Yi-Bo Yang🇨🇳

    The quark mass function is computed both by solving the quark propagator Dyson-Schwinger equation and from lattice simulations implementing overlap and Domain-Wall fermion actions for valence and sea quarks, respectively. The results are confronted and seen to produce a very congruent picture, showing a remarkable agreement for the explored range of current-quark masses. The effective running-interaction is based on a process-independent charge rooted on a particular truncation of the Dyson-Schwinger equations in the gauge sector, establishing thus a link from there to the quark sector and inspiring a correlation between the emergence of gluon and hadron masses.

    hep-latnucl-thPRD(2021)·23 citations
  3. 04

    Charged pion electric polarizability from lattice QCD

    Hossein Niyazi🇺🇸 · Andrei Alexandru🇺🇸 · Frank X. Lee🇺🇸 · Michael Lujan🇺🇸

    We present a calculation of the charged pion electric polarizability using the background field method. To extract the mass-shift induced by the electric field for the accelerated charged particle we fit the lattice QCD correlators using correlators derived from an effective model. The methodology outlined in this study (boundary conditions, fitting procedure, etc.) is designed to ensure that the results are invariant under gauge transformations of the background field. We apply the method to four dynamical ensembles to extract at pion mass of MeV.

    hep-lathep-exhep-phnucl-thPRD(2021)·13 citations
  4. 05

    Radiative corrections of order to Sirlin's radiative corrections of order , induced by the hadronic structure of the neutron

    A. N. Ivanov🇦🇹 · R. Höllwieser🇦🇹 · N. I. Troitskaya🇦🇹 · M. Wellenzohn🇦🇹 · Ya. A. Berdnikov🇷🇺

    We investigate the contributions of the hadronic structure of the neutron to radiative corrections (or the inner RC) to the neutron beta decay, where , and are the fine-structure constant, the electron energy and the nucleon mass, respectively. We perform the calculation within the effective quantum field theory of strong low-energy pion-nucleon interactions described by the linear -model with chiral symmetry and electroweak hadron-hadron, hadron-lepton and lepton-lepton interactions for the electron-lepton family with symmetry of the Standard Electroweak Theory (Ivanov et al., Phys. Rev. D99, 093006 (2019)). We show that after renormalization, carried out in accordance with Sirlin's prescription (Sirlin, Phys. Rev. 164, 1767 (1967)), the inner RC are of the order of a few parts of . This agrees well with the results obtained in (Ivanov et al., Phys. Rev. D99, 093006 (2019)).

    hep-phnucl-exnucl-thPRD(2021)·5 citations
  5. 06

    The Radius of PSR J0740+6620 from NICER and XMM-Newton Data

    M. C. Miller🇺🇸 · F. K. Lamb🇺🇸 · A. J. Dittmann🇺🇸 · S. Bogdanov🇺🇸 · Z. Arzoumanian🇺🇸 · K. C. Gendreau🇺🇸 · S. Guillot🇫🇷 · W. C. G. Ho🇺🇸 · J. M. Lattimer🇺🇸 · M. Loewenstein🇺🇸 · S. M. Morsink🇨🇦 · P. S. Ray🇺🇸 and 16 other authors

    PSR J07406620 has a gravitational mass of , which is the highest reliably determined mass of any neutron star. As a result, a measurement of its radius will provide unique insight into the properties of neutron star core matter at high densities. Here we report a radius measurement based on fits of rotating hot spot patterns to Neutron Star Interior Composition Explorer (NICER) and X-ray Multi-Mirror (XMM-Newton) X-ray observations. We find that the equatorial circumferential radius of PSR J07406620 is km (68%). We apply our measurement, combined with the previous NICER mass and radius measurement of PSR J00300451, the masses of two other pulsars, and the tidal deformability constraints from two gravitational wave events, to three different frameworks for equation of state modeling, and find consistent results at times nuclear saturation density. For a given framework, when all measurements are included the radius of a neutron star is known to % (68% credibility) and the radius of a neutron star is known to %. The full radius range that spans the credible intervals of all the radius estimates in the three frameworks is km for a neutron star and km for a neutron star.

    astro-ph.HEgr-qcnucl-exnucl-thApJL(2021)·1580 citations
  6. 07

    A NICER View of the Massive Pulsar PSR J0740+6620 Informed by Radio Timing and XMM-Newton Spectroscopy

    Thomas E. Riley🇳🇱 · Anna L. Watts🇳🇱 · Paul S. Ray🇺🇸 · Slavko Bogdanov🇺🇸 · Sebastien Guillot🇫🇷 · Sharon M. Morsink🇨🇦 · Anna V. Bilous🇳🇱 · Zaven Arzoumanian🇺🇸 · Devarshi Choudhury🇳🇱 · Julia S. Deneva🇺🇸 · Keith C. Gendreau🇺🇸 · Alice K. Harding🇺🇸 and 18 other authors

    We report on Bayesian estimation of the radius, mass, and hot surface regions of the massive millisecond pulsar PSR J07406620, conditional on pulse-profile modeling of Neutron Star Interior Composition Explorer X-ray Timing Instrument (NICER XTI) event data. We condition on informative pulsar mass, distance, and orbital inclination priors derived from the joint NANOGrav and CHIME/Pulsar wideband radio timing measurements of arXiv:2104.00880. We use XMM European Photon Imaging Camera spectroscopic event data to inform our X-ray likelihood function. The prior support of the pulsar radius is truncated at 16 km to ensure coverage of current dense matter models. We assume conservative priors on instrument calibration uncertainty. We constrain the equatorial radius and mass of PSR J07406620 to be km and M respectively, each reported as the posterior credible interval bounded by the 16% and 84% quantiles, conditional on surface hot regions that are non-overlapping spherical caps of fully-ionized hydrogen atmosphere with uniform effective temperature; a posteriori, the temperature is [K] for each hot region. All software for the X-ray modeling framework is open-source and all data, model, and sample information is publicly available, including analysis notebooks and model modules in the Python language. Our marginal likelihood function of mass and equatorial radius is proportional to the marginal joint posterior density of those parameters (within the prior support) and can thus be computed from the posterior samples.

    astro-ph.HEastro-ph.SRnucl-thApJL(2021)·1483 citations

Affiliations

first authorsco-authorsvia INSPIRE