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S. Santra

Researcher at Bhabha Atomic Research Centre

Publications -  38
Citations -  718

S. Santra is an academic researcher from Bhabha Atomic Research Centre. The author has contributed to research in topics: Coulomb barrier & Elastic scattering. The author has an hindex of 16, co-authored 34 publications receiving 615 citations.

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Fusion of the weakly bound projectile Be-9 with Y-89

TL;DR: In this article, the effect of coupling of both the projectile and target excitations on the above quantities has been investigated, and the complete fusion cross sections, especially at above-barrier energies, have been found to be suppressed by ($20.5$) compared to the ones predicted by the coupled-channels calculations that do not include the couplings to the projectile continuum, indicating the loss of flux from the entrance channel before fusion.
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Suppression of complete fusion in the Li 6 + Sm 144 reaction

TL;DR: In this article, the authors showed that the complete fusion excitation function at near barrier energies can be suppressed by 32% in the case of the Coulomb barrier penetration model with strongly bound projectiles forming a similar compound nucleus.
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Fusion of Li 6 with Tb 159 at near-barrier energies

TL;DR: In this paper, complete and incomplete fusion cross sections at above-barrier energies are suppressed by $~$34% compared to coupled-channel calculations, and the extent of suppression is correlated with the separation energies of the projectiles.
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Reaction mechanisms involving weakly bound Li 6 and Bi 209 at energies near the Coulomb barrier

TL;DR: In this paper, the elastic, inelastic, and transfer cross sections are measured for the reaction at energies around the Coulomb barrier, and the optical model analysis of elastic scattering shows a breakup threshold anomaly in the energy dependence of the real and imaginary potentials.
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Fusion cross sections for the Be 9 + Sn 124 reaction at energies near the Coulomb barrier

TL;DR: The complete and incomplete fusion cross sections for {sup 9}Be+{sup 124}Sn reaction have been deduced using the online gamma-ray measurement technique as discussed by the authors, which is in agreement with the systematics of L. R. Gasques et al.