PaperPanorama

Nuclear Theory·nucl-th

Thursday·May 28, 2020

7 papers2 primary·5 cross-listed

  1. 03

    meson production in association with an open charm hadron at the LHC: A reappraisal

    Hua-Sheng Shao🇫🇷

    We critically (re)examine the associated production process of a meson plus an open charm hadron at the LHC in the proton-proton () and proton-lead () collisions. Such a process is very intriguing in the sense of tailoring to explore the double parton structure of nucleons and to determine the geometry of partons in nuclei. In order to interpret the existing data with the LHCb detector at the center-of-mass energy TeV, we introduce two overlooked mechanisms for the double parton scattering (DPS) and single parton scattering (SPS) processes. Besides the conventional DPS mode, where the two mesons are produced almost independently in the two separate scattering subprocesses, we propose a novel DPS mechanism that the two constituent (heavy) quarks stemming from two hard scatterings can form into a composite particle, like the meson, during the hadronization phase. However, it turns out the corresponding contribution is small in hadroproduction. On the contrary, we point out that the resummation of the initial state logarithms due to gluon splitting into a charm quark pair is crucial to understand the LHCb measurement, which was overlooked in the literature. We perform a proper matching between the perturbative calculations in different initial-quark flavor number schemes, generically referring to the variable flavor number scheme. The new variable flavor number scheme calculation for the process strongly enhance the SPS cross sections, almost closing the discrepancies between theory and experiment. Finally, we present our predictions for the forthcoming LHCb measurement in collisions at TeV. Some interesting observables are exploited to set up the control regions of the DPS signal and to probe the impact-parameter dependent parton densities in lead.

    hep-phhep-exnucl-exnucl-thPRD(2020)·18 citations
  2. 04

    The Constituent Counting Rule and Omega Photoproduction

    Trevor Reed🇺🇸 · Christopher Leon🇺🇸 · Frank Vera🇺🇸 · Lei Guo🇺🇸 · Brian Raue🇺🇸

    The constituent counting ruling (CCR) has been found to hold for numerous hard, exclusive processes. It predicts the differential cross section at high energies and fixed should follow , where is the minimal number of constituents involved in the reaction. Here we provide an in-depth analysis of the reaction at using CLAS data with an energy range of GeV, where the CCR has been shown to work in other reactions. We argue for a stringent method to select data to test the CCR and utilize a Taylor-series expansion to take advantage of data from nearby angle bins in our analysis. Naïvely, this reaction would have (or if the photon is in a state) and we would expect a scaling of (). Instead, a scaling of was observed. Explanations for this apparent failure of the naïve CCR assumptions are examined.

    hep-phnucl-exnucl-thPRC(2021)·3 citations
  3. 05

    Modified MIT bag Models -- part I: Thermodynamic consistency, stability windows and symmetry group

    Luiz L. Lopes🇧🇷 · Carline Biesdorf🇧🇷 · Débora P. Menezes🇧🇷

    In this work we study different variations of the MIT bag model. We start with the so called non-ideal bag model and discuss it in detail. Then we implement a vector interaction in the MIT bag model that simulates a meson exchange interaction and fix the quark-meson coupling constants via symmetry group theory. At the end we propose an original model, inspired by the Boguta-Bodmer models, which allows us to control the repulsion interaction at high densities. For each version of the model we obtain a stability window as predicted by the Bodmer-Witten conjecture and discuss its thermodynamic consistency.

    hep-phastro-ph.HEnucl-thPhys.Scripta(2021)·73 citations
  4. 06

    Conserved charges in general relativity

    Sinya Aoki🇯🇵 · Tetsuya Onogi🇯🇵 · Shuichi Yokoyama🇯🇵

    We present a precise definition of a conserved quantity from an arbitrary covariantly conserved current available in a general curved spacetime with Killing vectors. This definition enables us to define energy and momentum for matter by the volume integral. As a result we can compute charges of Schwarzschild and BTZ black holes by the volume integration of a delta function singularity. Employing the definition we also compute the total energy of a static compact star. It contains both the gravitational mass known as the Misner-Sharp mass in the Oppenheimer-Volkoff equation and the gravitational binding energy. We show that the gravitational binding energy has the negative contribution at maximum by 68% of the gravitational mass in the case of a constant density. We finally comment on a definition of generators associated with a vector field on a general curved manifold.

    gr-qchep-phhep-thnucl-thInt.J.Mod.Phys.A(2021)·35 citations
  5. 07

    Measurement of the Th isomer energy with a magnetic micro-calorimeter

    Tomas Sikorsky · Jeschua Geist · Daniel Hengstler · Sebastian Kempf · Loredana Gastaldo · Christian Enss · Christoph Mokry · Jörg Runke · Christoph E. Düllmann · Peter Wobrauschek · Kjeld Beeks · Veronika Rosecker and 4 other authors

    We present a measurement of the low-energy (0--60keV) ray spectrum produced in the -decay of U using a dedicated cryogenic magnetic micro-calorimeter. The energy resolution of eV, together with exceptional gain linearity, allow us to measure the energy of the low-lying isomeric state in Th using four complementary evaluation schemes. The most accurate scheme determines the Th isomer energy to be eV, corresponding to 153.1(37)nm, superseding in precision previous values based on spectroscopy, and agreeing with a recent measurement based on internal conversion electrons. We also measure branching ratios of the relevant excited states to be and .

    nucl-exnucl-thphysics.ins-detPRL(2020)·94 citations

Affiliations

first authorsco-authorsvia INSPIRE