BARC/PUB/2016/0408

 
 

Probing the fusion of 7Li with 64Ni at near-barrier energies

 
     
 
Author(s)

Shaikh, M. M.; Roy, S.; Rajbanshi, S.; Shrivastava, A.; and others
(NPD)

Source

Physical Review-C, 2016. Vol. 93 (4): pp. 044616.1-044616.8

ABSTRACT

Background: The stable isotopes of Li, 6Li and 7Li, have two-body cluster structures of α + d and α + t with α-separation energies or breakup thresholds at 1.47 and 2.47 MeV, respectively. The weak binding of these projectiles introduces several new reaction channels not usually observed in the case of strongly bound projectiles. The impact of these breakup or breakup-like reaction channels on fusion, the dominant reaction process at near-barrier energies, with different target masses is of current interest.

Purpose: Our purpose is to explore the fusion, at above and below the Coulmb barrier, of 7Li with 64Ni target in order to understand the effect of breakup or breakup-like processes with medium-mass target in comparison with 6Li, which has a lower breakup threshold.

Measurement: The total fusion (TF) excitation of the weakly bound projectile 7Li with the medium-mass target 64Ni has been measured at the near-barrier energies (0.8 to 2 VB). The measurement was performed using the online characteristic γ -ray detection method. The complete fusion (CF) excitation function for the system was obtained using the xn-evaporation channels with the help of statistical model  predictions.

Results: At the above barrier energies CF cross sections exhibit an average suppression of about 6.5% compared to the one-dimensional barrier penetration model (1DBPM) predictions, while the model describes the measured TF

cross section well. But below the barrier, both TF and CF show enhancements compared to 1DBPM predictions.

Unlike 6Li, enhancement of CF for 7Li could not be explained by inelastic coupling alone.

Conclusion: Whereas the σTF cross sections are almost the same for both the systems in the above barrier region, the suppression of σCF at above the barrier is less for the 7Li+64Ni system than for the 6Li+64Ni system. Also direct cluster transfer has been identified as the probable source for producing large enhancement in TF cross sections.

 
 
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