Interactions of 10.6 GeV/n gold nuclei with light and heavy target nuclei in nuclear emulsion

Cherry, M.L. ; Dabrowska, A. ; Deines-Jones, P. ; et al.
Z.Phys.C 63 (1994) 549-556, 1994.
Inspire Record 1385260 DOI 10.17182/hepdata.14108

We have investigated the particle production and fragmentation of nuclei participating in the interactions of 10.6 GeV/n gold nuclei in nuclear emulsions. A new criterion has been found to distinguish between the interactions of these gold nuclei with the light (H,C,N,O) and heavy (Ag, Br) target nuclei in the emulsion. This has allowed separate analyses of the multiplicity and pseudo-rapidity distributions of the singly charged particles emitted in Au-(H,C,N,O) and Au-(Ag,Br) interactions, as well as of the modes of breakup of the projectile and target nuclei. The pseudo-rapidity distributions show strong forward asymmetries, particularly for the interactions with the light nuclei. Heavy target nuclei produce a more severe breakup of the projectile gold nucleus than do the lighter targets. A negative correlation between the number of fragments emitted from the target nuclei and the degree of centrality of the collisions has been observed, which can be attributed to the total destruction of the relatively light target nuclei by these very heavy projectile nuclei.

4 data tables

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Loss of memory of target nucleus deformation axis in heavy ion fusion fission

Hinde, D. J. ; Pan, W. ; Berriman, A. C. ; et al.
Phys.Rev.C 62 (2000) 024615, 2000.
Inspire Record 530771 DOI 10.17182/hepdata.25429

Fission fragment cross sections and angular anisotropies have been measured to high accuracy following fusion of 16O with the strongly deformed nucleus 182W, at bombarding energies spanning the fusion barrier region. Together with existing evaporation residue data, they show that at all the beam energies, the statistical transition state model adequately describes the fission properties measured. No significant evidence was found for a memory of the different configurations at fusion resulting from the target nucleus deformation, in contrast with previous measurements for deformed actinide nuclei.

1 data table

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Fusion enhancement in the 32,38S+Ta-181 reaction

Zyromski, K. E. ; Loveland, W. ; Souliotis, G. A. ; et al.
Phys.Rev.C 63 (2001) 024615, 2001.
Inspire Record 552391 DOI 10.17182/hepdata.25426

We measured the capture-fission excitation functions for the 32S+181Ta reaction and the 38S+181Ta reaction. (The radioactive 38S beam was produced by projectile fragmentation.) In the 32S-induced reaction, an incomplete fusion component was observed at high energies, with an average linear momentum transfer corresponding to the escape of an α particle. The deduced interaction barrier heights were 130.7±0.3 and 124.8±0.3 MeV for the 32S- and 38S-induced reactions, respectively. No differences between the two reactions were observed beyond a simple shift in the interaction barrier height.

2 data tables

A typical beam energy resolution was 0.01 TO 0.1 MeV. In the S32-induced reaction, an incomplete fussion component was observed at high energies, with an average linear momentum transfer corresponding to th e escape of an alpha patticle. The deduced interaction barrier heights were 130 .7+-0.3 and 124.8+-0.3 MeV for the S32 and S38-induced reactions respectively.

A typical beam energy resolution was 0.01 TO 0.1 MeV.