PaperPanorama

Nuclear Theory·nucl-th

Wednesday·March 30, 2022

12 papers9 primary·3 cross-listed

  1. 10

    On the Sound Speed in Neutron Stars

    Sinan Altiparmak🇩🇪 · Christian Ecker🇩🇪 · Luciano Rezzolla🇩🇪

    Determining the sound speed in compact stars is an important open question with numerous implications on the behaviour of matter at large densities and hence on gravitational-wave emission from neutron stars. To this scope, we construct more than equations of state (EOSs) with continuous sound speed and build more than nonrotating stellar models consistent not only with nuclear theory and perturbative QCD, but also with astronomical observations. In this way, we find that EOSs with sub-conformal sound speeds, i.e. with within the stars, are possible in principle but very unlikely in practice, being only of our sample. Hence, it is natural to expect that somewhere in the stellar interior. Using our large sample, we obtain estimates at credibility of neutron-star radii for representative stars with and solar masses, , , and for the binary tidal deformability of the GW170817 event, . Interestingly, our lower-bounds on the radii are in very good agreement with the prediction derived from very different arguments, namely, the threshold mass. Finally, we provide simple analytic expressions to determine the minimum and maximum values of as a function of the chirp mass.

    astro-ph.HEgr-qchep-phnucl-thApJL(2022)·266 citations
  2. 11

    Pure Quark and Gluon Observables in Collinear Drop

    Iain W. Stewart🇺🇸 · Xiaojun Yao🇺🇸

    We construct a class of pure quark and gluon observables by using the collinear drop grooming technique. The construction is based on linear combinations of multiple cumulative distributions of the jet mass in collinear drop, whose specific weights are fully predicted perturbatively. This yields observables which obtain their values purely from quarks (or purely from gluons) in a wide region of phase space. We demonstrate this by showing that these observables are effective in two phase space regions, one dominated by perturbative resummation and one dominated by nonperturbative effects. The nonperturbative effects are included using shape functions which only appear as a common factor in the linear combinations constructed. We test this construction using a numerical analysis with next-to-leading logarithmic resummation and various shape function models, as well as analyzing these observables with Pythia and Vincia. Choices for the collinear drop parameters are optimized for experimental use.

    hep-phhep-exnucl-thJHEP(2022)·15 citations
  3. 12

    Semi-classical kinetic theory for massive spin-half fermions with leading-order spin effects

    Arpan Das🇵🇱 · Wojciech Florkowski🇵🇱 · Avdhesh Kumar🇹🇼 · Radoslaw Ryblewski🇵🇱 · Rajeev Singh🇵🇱

    We consider the quantum kinetic-theory description for interacting massive spin-half fermions using the Wigner function formalism. We derive a general kinetic theory description assuming that the spin effects appear at the classical and quantum level. To track the effect of such different contributions we use the semi-classical expansion method to obtain the generalized dynamical equations including spin, analogous to classical Boltzmann equation. This approach can be used to obtain a collision kernel involving local as well as non-local collisions among the microscopic constituent of the system and eventually, a framework of spin hydrodynamics ensuring the conservation of the energy-momentum tensor and total angular momentum tensor.

    hep-thhep-phnucl-thActa Phys.Polon.B(2023)·22 citations

Affiliations

first authorsco-authorsvia INSPIRE