Electric and Magnetic Dipole States in $^{238}$U

ORAL

Abstract

An investigation of dipole states in $^{238}$U is important for the fundamental understanding of its structure. Precise experimental information on the distribution of $M1$ and $E1$ \mbox{transitions} in $^{238}$U has been obtained using the nuclear resonance \mbox{fluorescence} \mbox{technique} at the High-Intensity $\gamma$-ray Source at the \mbox{Triangle} \mbox{Universities} Nuclear Laboratory. Using 100\% linearly-polarized, \mbox{monoenergetic} \mbox{$\gamma$-ray} beams between incident energies of 2.0 - 5.5 MeV, the spin, \mbox{parity}, width, and $\gamma$-strength of the ground-state deexcitations were \mbox{determined}. These measurements will form a unique data set that can be used for comparison with theoretical models of collective excitations in heavy, deformed nuclei. The data can also provide isotope-specific signatures to search for special nuclear materials.

*This work was supported in part by USDOE Grant No. DE-FG52-06NA26155, NSF/DHS Grant No. CBET-0736123, and NSF/DHS Grant No. CBET-0736155.

Authors

  • S.L. Hammond

    • UNC-Chapel Hill \& TUNL
  • A. Adekola

    • UNC-Chapel Hill \& TUNL
    • Rutgers U
  • C.T. Angell

    • UNC-Chapel Hill \& TUNL
  • H.J. Karwowski

    • UNC-Chapel Hill and TUNL
    • UNC-Chapel Hill \& TUNL
    • UNC/TUNL
  • C.R. Howell

    • Duke University \& TUNL
    • Duke, TUNL
    • Duke University and Triangle Universities Nuclear Laboratory (TUNL)
    • Duke/TUNL
    • Duke and TUNL
  • E. Kwan

    • Duke University \& TUNL
    • Duke/TUNL
  • G. Rusev

    • Duke University \& TUNL
    • Duke/TUNL
    • Duke Univ./TUNL
    • Duke U. and TUNL
  • A.P. Tonchev

    • Duke University \& TUNL
    • Duke/TUNL
    • Duke Univ./TUNL
  • W. Tornow

    • Duke University \& TUNL
    • TUNL and Duke University
    • Duke University and Triangle Universities Nuclear Laboratory (TUNL)
    • Duke/TUNL
    • Duke Univ./TUNL
  • J.H. Kelley

    • NCSU \& TUNL
    • NCSU/TUNL
    • NCState/TUNL