Araştırma Makalesi

A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials

Cilt: 4 Sayı: 1 25 Ağustos 2017
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A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials

Abstract

The quasi-elastic scattering data of 7Li + 120Sn reaction at ELab = 19.5, 20.5, and 25.0 MeV incident energies have been reanalyzed within the framework of the optical model. In order to obtain the real potential, seven different nuclear potentials have been used. The imaginary potential has been assumed in Woods-Saxon form. The theoretical results have been compared with each other as well as the experimental data. 

Keywords

Kaynakça

  1. [1] R.D Woods., D.S. Saxon, “Diffuse Surface Optical Model for Nucleon-Nuclei Scattering”, Phys. Rev. 95, 577-578 (1954).
  2. [2] P Schwandt., S. Kai1as, W.W. Jacobs, M.D. Kaitchuck, W. Ploughe, P.P. Singh, “Optical potential for 6Li + 28Si elastic scattering at 154 MeV”, Phys. Rev. C. 21, 1656(R) (1980).
  3. [3] M. Aygun, I. Boztosun, K. Rusek, “Parametrized form of the dynamic polarization potential for the 6He + 208Pb interaction”, Mod. Phys. Lett. A 28, 1350112 (2013).
  4. [4] M. Aygun, Y. Kucuk, I. Boztosun, A. A. Ibraheem, “Microscopic few-body and Gaussian-shaped density distributions for the analysis of the 6He exotic nucleus with different target nuclei”, Nucl. Phys. A 848, 245-259 (2010).
  5. [5] M. Lozano, G. Madurga, “Exponential optical potentials for heavy-ion elastic scattering”, Nuclear Physics A 334, 349-364 (1980).
  6. [6] M. Aygun, “Double-folding analysis of the 6Li + 58Ni reaction using the ab initio density distribution”, Eur. Phys. J. A 48, 145 (2012).
  7. [7] D.P. Sousa, D. Pereira, J. Lubian, L.C. Chamon, J.R.B. Oliveira, E.S. Rossi, C.P. Silva, P.N. de Faria, V. Guimarães, R. Lichtenthaler, M.A.G. Alvarez, “Probing the 6,7Li nucleon densities through a new break-up process approach”, Nucl. Phys. A 836, 1-10 (2010).
  8. [8] M. Aygun, Z. Aygun, “A study on 7Li + 120Sn quasi-elastic scattering”, Turk. J. Phys. 40, 12-23 (2016).

Ayrıntılar

Birincil Dil

İngilizce

Konular

Mühendislik

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

25 Ağustos 2017

Gönderilme Tarihi

26 Kasım 2016

Kabul Tarihi

13 Haziran 2017

Yayımlandığı Sayı

Yıl 2017 Cilt: 4 Sayı: 1

Kaynak Göster

APA
Aygün, M. (2017). A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials. Journal of Nuclear Sciences, 4(1), 1-6. https://doi.org/10.1501/nuclear.2023.20
AMA
1.Aygün M. A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials. Journal of Nuclear Sciences. 2017;4(1):1-6. doi:10.1501/nuclear.2023.20
Chicago
Aygün, M. 2017. “A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials”. Journal of Nuclear Sciences 4 (1): 1-6. https://doi.org/10.1501/nuclear.2023.20.
EndNote
Aygün M (01 Ağustos 2017) A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials. Journal of Nuclear Sciences 4 1 1–6.
IEEE
[1]M. Aygün, “A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials”, Journal of Nuclear Sciences, c. 4, sy 1, ss. 1–6, Ağu. 2017, doi: 10.1501/nuclear.2023.20.
ISNAD
Aygün, M. “A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials”. Journal of Nuclear Sciences 4/1 (01 Ağustos 2017): 1-6. https://doi.org/10.1501/nuclear.2023.20.
JAMA
1.Aygün M. A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials. Journal of Nuclear Sciences. 2017;4:1–6.
MLA
Aygün, M. “A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials”. Journal of Nuclear Sciences, c. 4, sy 1, Ağustos 2017, ss. 1-6, doi:10.1501/nuclear.2023.20.
Vancouver
1.M. Aygün. A Theoretical Analysis of Quasi-elastic Scattering of 7Li by 120Sn Using Various Nuclear Potentials. Journal of Nuclear Sciences. 01 Ağustos 2017;4(1):1-6. doi:10.1501/nuclear.2023.20