Skip to main content
Log in

On the decay of compound nuclei following alpha-particle and12C induced reactions

  • Published:
Zeitschrift für Physik A Atoms and Nuclei

Abstract

Multiple coincidence rates have been measured using a detector system consisting of a Ge(Li) spectrometer and eight NaI(Tl) or eight liquid scintillators. Reactions induced byα-particles with energies of 51–55 MeV and 118 MeV12C ions are studied. The data are analysed to give the first and second central moments of the distribution of the number ofγ-rays feeding individual levels in the final nuclei. When these numbers are compared to spin distributions calculated with the statistical model code GROGI the relative importance of dipole and quadrupole deexcitation modes can be ascertained. In particular, in the122Te(α, 4n)122Xe reaction theγ-decay prior to the entry into the ground band is well described as a statistical process proceeding to 50% by dipole and 50% by quadrupole radiation. In the166Er(α,4n)166Yb and192Os(α,4n)192Pt reactions the relative amount of quadrupole radiation is larger and it seems that the dipole and quadrupole decay takes place via separate cascades. In the164Dy(12C, 7-8n) reactions the average multiplicity is independent of spin, suggesting that the nucleus forgets the spin of the entry state before the process enters into the ground band. In the176Yb(12C, 8n)180Os reaction, finally, the nucleus definitely retains memory of the entry state during the decay. In this last case the multiplicity measurement is combined with aγ-ray singles measurement to give an average excitation energy prior to theα-decay and the average moment of inertia characterising the decay of the high-spin states.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  1. Hagemann, G.B., Broda, R., Herskind, B., Ishihara, M., Ogaza, S., Ryde, H.: Nucl. Phys. A245, 166 (1975)

    Google Scholar 

  2. Kerek, A., Kihlgren, J., Lindblad, Th., Pomar, C., Starker, J., Walus, W., Skeppstedt, Ö., Bialkowski, J., Kownacki, J., Sujkowski, Z., Zgliński, A.: Nucl. Instrum. Methods150, 483 (1978)

    Google Scholar 

  3. Lindblad, Th.: Nucleonica22, 1065 (1977)

    Google Scholar 

  4. Ockels, W.: Z. Phys. A — Atoms and Nuclei286, 181 (1978)

    Google Scholar 

  5. Hjorth, S.A., Johnson, A., Lindblad, Th., Funke, L., Kemnitz, P., Winter, G.: Nucl. Phys. A262, 328 (1976)

    Google Scholar 

  6. Lindblad, Th.: Nucl. Instrum. Methods154, 54 (1978)

    Google Scholar 

  7. Adams, F., Dams, R.: Applied gamma-ray spectrometry. Oxford, New York: Pergamon Press 1975

    Google Scholar 

  8. Heath, R.L.: “Scintillation spectrometry, Gamma-ray spectrum catalogue” ACC Research and development report, IDO-16404, Physics and Mathematics (TJC-4500, Ed. 13) (1957)

  9. Liotta, R., Sorensen, R.: Nucl. Phys. A297, 136 (1978)

    Google Scholar 

  10. Westerberg, L., Sarantites, D.G., Lovelt, R., Hood, J.T., Barker, J.H., Currie, C.M., Mallani, N.J.M.: Nucl. Instrum. Methods145, 295 (1977)

    Google Scholar 

  11. Newton, J.O., Sie, S.H., Dracoulis, G.D.: Phys. Rev. Lett.40, 625 (1978)

    Google Scholar 

  12. Gilat, J.: BNL 50 246 (T-580) 1970

  13. Bass, R.: Phys. Lett.47B, 139 (1973) and Nucl. Phys. A231, 45 (1974)

    Google Scholar 

  14. Garret, J.: Private communication

  15. Simon, R.S., Banaschik, M.V., Colombani, P., Soroka, D.P., Stephens, F.S., Diamond, R.M.: Phys. Rev. Lett.36, 359 (1976)

    Google Scholar 

  16. Hillis, D.L., Poulet, C.P., Stephens, F.S., Auger, P., Ellegaard, C., Fossan, D.B., Habs, D., Körner, H.J., Kluge, H., Shih, S., Diamond, R.M.: (to be published)

  17. Anderson, O., Bauer, R., Hagemann, G.B., Halbert, M.L., Herskind, B., Nieman, M., Oeschler, H., Ryde, H.: Nucl. Phys. A295, 163 (1978)

    Google Scholar 

  18. Zolnowski, D.R., Yamada, H., Cala, S.E., Kahler, A.C., Sugihara, T.T.: Phys. Rev. Lett.41, 92 (1978)

    Google Scholar 

  19. Geoffrey, K.A., Sarantites, D.G., Halbert, M.L., Hensley, D.C., Dayras, R.A., Barker, J.H.: Phys. Rev. Lett.43, 1303 (1979)

    Google Scholar 

  20. Lieder, R.M., Ryde, H.: Adv. Nucl. Phys.10, 1 (1978)

    Google Scholar 

  21. Sarantites, D.G., Barker, J.H., Halbert, M.L., Hensley, D.C., Dayras, R.A., Eichler, E., Johnson, N.R., Gronemeyer, S.A.: Phys. Rev. C14, 2138 (1976)

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Additional information

The authors would like to thank Drs. M.J.A. de Voigt and W. Ockels for many valuable discussions and suggestions regarding this work. They also wish to acknowledge the help of the staff of the 225-cm cyclotron for providing the beams ofα-particles and12C ions.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Hjorth, S.A., Johnson, A., Kerek, A. et al. On the decay of compound nuclei following alpha-particle and12C induced reactions. Z Physik A 301, 35–49 (1981). https://doi.org/10.1007/BF01412461

Download citation

  • Received:

  • Revised:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF01412461

Keywords

Navigation