PaperPanorama

Nuclear Theory·nucl-th

Wednesday·January 8, 2020

15 papers8 primary·7 cross-listed

  1. 09

    Ab initio calculations of reactor antineutrino fluxes with exact lepton wave functions

    Dong-Liang Fang🇨🇳 · Yu-Feng Li🇨🇳 · Di Zhang🇨🇳

    New \textit{ab initio} calculations of the isotopic reactor antineutrino fluxes are provided with exact numerical calculations of the lepton wave functions, assuming all the decay branches are allowed GT transitions. We illustrate that the analytical Fermi function and finite size effect each could have the largest spectral deviation of , whereas the effect of their combination could result in spectral deviations at the level of 5%-10%. Meanwhile, we also find that several forms of the extended charge distributions have negligible effects on the spectral variation. Using the state-of-the-art nuclear databases, compared to usual \textit{ab initio} calculations using the analytical single beta decay spectrum, our new calculation shows sizable but opposite spectral deviations at the level of 2%-4% for the cumulative antineutrino and electron energy spectra which may partially contribute to the observed spectral excess in the high energy antineutrino range. Finally we observe that the {bias} of analytical beta decay spectrum approximation is rather universal for all the four fissionable isotopes.

    hep-phhep-exnucl-thPLB(2021)·7 citations
  2. 10

    Nuclear magnetic moments of francium 207-213 from precision hyperfine comparisons

    B. M. Roberts · J. S. M. Ginges

    We report a fourfold improvement in the determination of nuclear magnetic moments for neutron-deficient isotopes of francium-207--213, reducing the uncertainties from 2% for most isotopes to 0.5%. These are found by comparing our high-precision calculations of hyperfine structure constants for the ground states with experimental values. In particular, we show the importance of a careful modeling of the Bohr-Weisskopf effect, which arises due to the finite nuclear magnetization distribution. This effect is particularly large in Fr and until now has not been modeled with sufficiently high accuracy. An improved understanding of the nuclear magnetic moments and Bohr-Weisskopf effect are crucial for benchmarking the atomic theory required in precision tests of the standard model, in particular atomic parity violation studies, that are underway in francium.

    physics.atom-phnucl-thPRL(2020)·15 citations
  3. 11

    Overview of experimental critical point search

    Tobiasz Czopowicz🇵🇱

    The existence and location of the QCD critical point is an object of vivid experimental and theoretical studies. Rich and beautiful data recorded by experiments at SPS and RHIC allow for a systematic search for the critical point - the search for a non-monotonic dependence of various correlation and fluctuation observables on collision energy and size of colliding nuclei.

    nucl-exhep-exnucl-thSpringer Proc.Phys.(2020)·3 citations
  4. 12

    Dynamically generated hadron resonances

    Tetsuo Hyodo🇯🇵

    Recent developments in hadron spectroscopy triggers the discussion on various exotic configurations beyond the simple three-quark state for baryons and quark-anti-quark pair for mesons. In particular, the states observed near a two-hadron threshold are often regarded as candidates of hadronic molecules, which are made of constituent hadrons and dynamically generated by the hadronic interactions. However, identification of the hadronic molecules involves several subtle difficulties which are often overlooked or underestimated. Here we summarize these subtleties and present a promising approach to distinguish the dynamically generated states from others using observable quantities.

    hep-phnucl-th1 citation
  5. 13

    A proton imagining via double parton scattering

    Matteo Rinaldi🇮🇹

    In this contribution we discuss the main outcomes of our studies on the so called double parton distribution functions (dPDFs), accessible quantities in high energy proton-proton and proton nucleus collisions, in double parton scattering processes (DPS). These new distributions are almost unknown, nevertheless they encode information on how partons inside a proton are correlated among each other. Double PDFs represent a new tool to explore the three dimensional partonic structure of hadrons. Here, we show results obtained from calculations of dPFDs. In particular we focus our attention on the impact of double correlations in experimental observables by showing how the latter could be studied in the next LHC run. We also discuss how the present knowledge on a peculiar experimental observable could unveil new information on the transverse proton structure

    hep-phnucl-thPoS(2020)·0 citations
  6. 14

    Nuclear physics uncertainties in neutrino-driven, neutron-rich supernova ejecta

    J. Bliss (Institut fur Kernphysik, Technische Universitat Darmstadt, Germany) · A. Arcones (Institut fur Kernphysik, Technische Universitat Darmstadt, Germany and GSI Helmholtzzentrum fur Schwerionenforschung GmbH, Darmstadt, Germany) · F. Montes (National Superconducting Cyclotron Laboratory, Michigan State University, East Lansing, MI, USA and Joint Institute for Nuclear Astrophysics) · J. Pereira (National Superconducting Cyclotron Laboratory, Michigan State University, East Lansing, MI, USA and Joint Institute for Nuclear Astrophysics)

    Neutrino-driven ejecta in core collapse supernovae (CCSNe) offer an interesting astrophysical scenario where lighter heavy elements between Sr and Ag can be synthesized. Previous studies emphasized the important role that () reactions play in the production of these elements, particularly in neutron-rich and alpha-rich environments. In this paper, we have investigated the sensitivity of elemental abundances to specific () reaction-rate uncertainties under different astrophysical conditions. Following a Monte Carlo nucleosynthesis study with over 36 representative astrophysical wind conditions, we have identified the most important reactions based on their impact on the final elemental abundances. Experimental studies of these reactions will reduce the nucleosynthesis uncertainties and make it possible to use observations to understand the origin of lighter heavy elements and the astrophysical conditions where they are formed.

    nucl-exastro-ph.HEastro-ph.SRnucl-thPRC(2020)·47 citations
  7. 15

    Strong decays of the newly observed narrow structures

    Wei Liang🇨🇳 · Qi-Fang Lü🇨🇳

    Motivated by the newly observed narrow structures , , , and in the mass spectrum, we investigate the strong decays of the low-lying states within the model systematically. According to their masses and decay widths, the observed , , , and resonances can be reasonably assigned as the mode states with , and . Meanwhile, the remaining wave state with should have a rather broad width, which can hardly be observed by experiments. For the and states, our predictions show that these states have relatively narrow total widths and mainly decay into the , and final states. These abundant theoretical predictions may be valuable for searching more excited states in future experiments.

    hep-phhep-exnucl-thEPJC(2020)·32 citations

Affiliations

first authorsco-authorsvia INSPIRE