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Title: Decay of excited nuclei produced in (78,82)Kr+(40)Ca reactions at 5.5 MeV/nucleon

Journal Article · · Physical Review, C (Nuclear Physics)
OSTI ID:1036685
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  1. ORNL
  2. GANIL, CEA, Caen, France & CNRS, IN2P3, Caen, France
  3. Grand Accelerateur National d'Ions Lourds (GANIL)
  4. Oak Ridge National Laboratory (ORNL)
  5. Universita Federico II and INFN Napoli
  6. Universita` di Napoli “Federico II”
  7. Uzbek Acad Sci, Uzbekistan
  8. IPHC, IN2P3-CNRS, Strasbourg Cedex2, France
  9. 1st Nazl Fis Nucl, Florence, Italy
  10. IPNO, IN2P3-CNRS and Universit´e Paris-Sud 11, Orsay Cedex, France
  11. LPC, IN2P3-CNRS, ENSICAEN and Universit´e, Caen Cedex, France
  12. CEA, Cetre de Sacaly, Gif-sur-Yvette, France
  13. INFN, Laboratori Nazionali di Legnaro, Italy
  14. Universita di Bologna
  15. IPNL, IN2P3-CNRS et Universit´e, Villeurbanne Cedex, France
  16. Universite de Laval, Quebec, Canada
  17. Universita di Napoli, Caserta, Italy

Decay modes of excited nuclei are investigated in {sup 78,82}Kr+{sup 40}Ca reactions at 5.5 MeV/nucleon. Charged products were measured by means of the 4{pi} INDRA array. Kinetic-energy spectra and angular distributions of fragments with atomic number 3 {le} Z {le} 28 indicate a high degree of relaxation and are compatible with a fissionlike phenomenon. Persistence of structure effects is evidenced from elemental cross sections ({sigma}{sub Z}) as well as a strong odd-even staggering (o-e-s) of the light-fragment yields. The magnitude of the staggering does not significantly depend on the neutron content of the emitting system. Fragment-particle coincidences suggest that the light partners in very asymmetric fission are emitted either cold or at excitation energies below the particle emission thresholds. The evaporation residue cross section of the {sup 78}Kr+{sup 40}Ca reaction is slightly higher than the one measured in the {sup 82}Kr+{sup 40}Ca reaction. The fissionlike component is larger by {approx}25% for the reaction having the lowest neutron-to-proton ratio. These experimental features are confronted to the predictions of theoretical models. The Hauser-Feshbach approach including the emission of fragments up to Z = 14 in their ground states as well as excited states does not account for the main features of {sigma}{sub Z}. For both reactions, the transition-state formalism reasonably reproduces the Z distribution of the fragments with charge 12 {le} Z {le} 28. However, this model strongly overestimates the light-fragment cross sections and does not explain the o-e-s of the yields for 6 {le} Z {le} 10. The shape of the whole Z distribution and the o-e-s of the light-fragment yields are satisfactorily reproduced within the dinuclear system framework which treats the competition among evaporation, fusion-fission, and quasifission processes. The model suggests that heavy fragments come mainly from quasifission while light fragments are predominantly populated by fusion. An underestimation of the cross sections for 16 {le} Z {le} 22 could signal a mechanism in addition to the capture process.

Research Organization:
Oak Ridge National Lab. (ORNL), Oak Ridge, TN (United States)
Sponsoring Organization:
USDOE
DOE Contract Number:
DE-AC05-00OR22725
OSTI ID:
1036685
Journal Information:
Physical Review, C (Nuclear Physics), Vol. 83, Issue 5; ISSN 0556-2813
Country of Publication:
United States
Language:
English

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