Published December 2022 | Version v1
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Coupled reaction channel analysis of 1n-pickup angular distribution in 32S+102,104Ru

  • 1. Inter-University Accelerator Centre, Aruna Asaf Ali Marg, New Delhi 110067 (India)

Description

Cross section of fusion (σfus) between two light ions can be described in terms of a potential model, in which the projectile and the target nuclei are considered to be inert. On the other hand, σfus of heavy ion reactions are known to be enhanced by orders of magnitude compared to the predictions of a simple potential model. Here we report coupled reaction channel (CRC) model analysis of 1n-pickup channel for these systems. More realistic description of transfer channels may lead to better estimates of form factors and, in turn, deeper understanding of their influence on σfus. The CRC results depend on many factors such as S.A., binding potential and OMP. The larger deformation of the target appeared to cause coupling with many inelastic states. A systematic study of transfer channels, within the CRC framework, for a large number of systems may be useful in reducing the uncertainties in the results

Part of:
Proceedings of the DAE-BRNS symposium on nuclear physics. V. 66

Additional details

Publishing Information

Publisher
Cotton University
Imprint Place
Guwahati (India)
Imprint Title
Proceedings of the DAE-BRNS symposium on nuclear physics. V. 66
Imprint Pagination
[1318 p.]
Journal Page Range
[2 p.]

Conference

Title
66. DAE-BRNS symposium on nuclear physics
Dates
1-5 Dec 2022
Place
Guwahati (India)

INIS

Country of Publication
India
Country of Input or Organization
India
INIS RN
54037773
Subject category
S73: NUCLEAR PHYSICS AND RADIATION PHYSICS;
Resource subtype / Literary indicator
Conference
Descriptors DEI
ANGULAR DISTRIBUTION; COUPLED CHANNEL THEORY; NUCLEAR DEFORMATION; RUTHENIUM 102 TARGET; RUTHENIUM 104 TARGET; SULFUR 32 REACTIONS; TOTAL CROSS SECTIONS
Descriptors DEC
CROSS SECTIONS; DEFORMATION; DISTRIBUTION; HEAVY ION REACTIONS; NUCLEAR REACTIONS; TARGETS

Optional Information

Notes
Article No. B110