PaperPanorama

Nuclear Theory·nucl-th

Friday·August 18, 2017

4 papers3 primary·1 cross-listed

  1. 01

    Goodness of Isospin in Neutron Rich Systems from the Fission Fragment Distribution

    Swati Garg · Ashok Kumar Jain

    We present the results of our calculations for the relative yields of neutron-rich fission fragments emitted in Pb (O, fission) reaction by using the concept of the conservation of isospin and compare with the experimental data. We take into account a range of isospin values allowed by the isospin algebra and assume that the fission fragments are formed in Isobaric Analog States. We also take into account the neutron multiplicity data for various neutron-emission channels in each partition, and use them to obtain the weight factors in calculating the yields. We then calculate the relative yields of the fission fragments. Our calculated results are able to reproduce the experimental trends reasonably well. This is the first direct evidence of the isospin conservation in neutron-rich systems and may prove a very useful tool in their studies.

    nucl-thPhys.Scripta(2017)·10 citations
  2. 02

    Universality of many-body two-nucleon momentum distributions: the correlated nucleon spectral function of complex nuclei revisited

    Claudio Ciofi degli Atti · Hiko Morita

    Realistic NN interactions and many-body approaches have been used to calculate ground-state properties of nuclei with A=3, 4, 12, 16, 40, with particular emphasis on various kinds of momentum distributions. It is shown that at proper values of the relative (rel) and center-of-mass (c.m.) momenta, the two-nucleon momentum distribution n_A^{N_1N_2} (k_{rel}, K_{c.m.}, \theta) exhibits the property of factorization, namely n_A^{N_1N_2} (k_{rel}, K_{c.m.}, \theta) \simeq n_{rel}(k_{rel}) n_(c.m.)( K{c.m.}). The factorization of the momentum distributions , bearing a universal character, results from a general property of realistic nuclear wave functions, namely their factorization at short inter-nucleon separations. The factorization of the two-nucleon momentum distribution allows one to develop the correlated part of the nucleon spectral function P(k,E) in terms of a convolution integral involving the product of the many-body, parameter-free relative and c.m. momentum distributions of a given nucleus. It is shown that: (i) the obtained spectral function perfectly satisfies the momentum sum rule, i.e. when it is integrated over the removal energy E, it fully reproduces the momentum distributions obtained from realistic many-body wave functions , (ii) in order to saturate the momentum sum rule at high values of the momentum (k \simeq 5 fm^{-1}) the spectral function has to be integrate up to E \simeq 400 MeV. To sum up a realistic, parameter-free many-body Spectral function has been developed such that : i) a phenomenological convolution spectral function developed in the past is fully justified from a many-body point of view , and (ii) the model dependence which might be present in calculations of inclusive electroweak processes could be reduced by the use of the convolution spectral function developed here.

    nucl-thPRC(2017)·18 citations
  3. 03

    Excited-state one-neutron halo nuclei within a parallel momentum distribution analysis

    Shubhchintak

    Using a fully quantum mechanical post-form finite-range distorted-wave Born approximation theory of Coulomb breakup, I study the parallel momentum distribution of the core in the Coulomb breakup of suggested excited-state one-neutron halo nuclei considered in their different bound excited states. Narrow momentum distributions obtained in the present calculations for some cases indicate the possibilities of the excited-state halo structure in the nuclei under consideration and therefore favor the previous predictions.

    nucl-thnucl-exPRC(2017)·6 citations
  4. 04

    Beam normal spin asymmetry for the process

    Carl E. Carlson (William and Mary)🇺🇸 · Barbara Pasquini (University of Pavia)🇮🇹 · Vladyslav Pauk (Jefferson Laboratory)🇺🇸 · Marc Vanderhaeghen (Johannes Gutenberg University)🇩🇪

    We calculate the single spin asymmetry for the process, for an electron beam polarized normal to the scattering plane. Such single spin asymmetries vanish in the one-photon exchange approximation, and are directly proportional to the absorptive part of a two-photon exchange amplitude. As the intermediate state in such two-photon exchange process is on its mass shell, the asymmetry allows one to access for the first time the on-shell as well as electromagnetic transitions. We present the general formalism to describe the beam normal spin asymmetry, and provide a numerical estimate of its value using the nucleon, , , and intermediate states. We compare our results with the first data from the Qweak@JLab experiment and give predictions for the A4@MAMI experiment.

    hep-phnucl-thPRD(2017)·24 citations

Affiliations

first authorsco-authorsvia INSPIRE