8 Reaction Dynamics for Stable and Halo Nuclei Reactions at Intermediate Energies
103
10. I. Tanihata et al., Measurements of Interaction Cross Sections and Nuclear Radii in the Light
p -Shell Region. Phys. Rev. Lett. 55, 2676–2679 (1985)
11. I. Tanihata et al., Measurement of interaction cross sections using isotope beams of Be and B
and isospin dependence of the nuclear radii. Phys. Lett. B 206, 592–596 (1988)
12. R. Kumari, Study of fusion probabilities with halo nuclei using different proximity based
potentials. Nucl. Phys. A 917, 85–91 (2013)
13. J.Y. Liu et al., Special roles of loose neutron-halo nucleus structure on the fragmentation and
momentum dissipation in heavy ion collisions. Phys. Lett. B 617, 24–32 (2005)
14. M.K. Sharma et al., Search for halo structure in 37 Mg using the Glauber model and microscopic
relativistic mean-field densities. Phys. Rev. C 93, 014322 (2016)
15. M. Takechi et al., Evidence of halo structure in 37 Mg observed via reaction cross sections and
intruder orbitals beyond the island of inversion. Phys. Rev. C 90, 061305 (2014)
16. Ch. Hartnack et al., Modelling the many-body dynamics of heavy ion collisions: Present status
and future perspective. Eur. Phys. J. A 1, 151–169 (1998)
17. J. Aichelin, Quantum molecular dynamics a dynamical microscopic n-body approach to investigate fragment formation and the nuclear equation of state in heavy ion collisions. Phys. Rep.
202, 233–360 (1991)
18. R. Kumar, S. Gautam, R.K. Puri, Multifragmentation within a clusterization algorithm based
on thermal binding energies. Phys. Rev. C 89, 064608 (2014); R. Kumar, R.K. Puri, Using
experimental data to test an -body dynamical model coupled with an energy-based clusterization
algorithm at low incident energies. Phys. Rev. C 97, 034624 (2018)
19. Sucheta, R. Kumar, R.K. Puri, On the study of fragmentation of loosely bound nuclei using
dynamical model. Proc. DAE Symp. Nucl. Phys. 63, 556–557 (2018)
20. D. Sisan et al., Intermediate mass fragment emission in heavy-ion collisions: energy and system
mass dependence. Phys. Rev. C 63, 027602 (2001)
21. P. Bansal, S. Gautam, R.K. Puri, On the peak mass production of different fragments in
intermediate-energy heavy-ion collisions. Eur. Phys. J. A 51, 139 (2015)
22. A. Sharma, A. Bharti, Isospin effects via Coulomb forces on the onset of multifragmentation
in light and heavily charged systems. Eur. Phys. J. A 52, 42 (2016)
23. S. Kaur, A.D. Sood, Model ingredients and peak mass production in heavy-ion collisions. Phys.
Rev. C 82, 054611 (2010)
24. S. Kaur, R.K. Puri, Isospin effects on the energy of peak mass production. Phys. Rev. C 87,
014620 (2013)
25. S. Sood, R. Kumar, A. Sharma, R.K. Puri, Cluster formation and phase transition in nuclear
disassembly using a variety of clusterization algorithms. Phys. Rev. C 99, 054612 (2019)
26. R. Kumar, S. Sood, A. Sharma, R.K. Puri, On the multifragmentation and phase transition in
the perspectives of different n-body dynamical models. Act. Phys. Pol. B 49, 301–306 (2018)
103
10. I. Tanihata et al., Measurements of Interaction Cross Sections and Nuclear Radii in the Light
p -Shell Region. Phys. Rev. Lett. 55, 2676–2679 (1985)
11. I. Tanihata et al., Measurement of interaction cross sections using isotope beams of Be and B
and isospin dependence of the nuclear radii. Phys. Lett. B 206, 592–596 (1988)
12. R. Kumari, Study of fusion probabilities with halo nuclei using different proximity based
potentials. Nucl. Phys. A 917, 85–91 (2013)
13. J.Y. Liu et al., Special roles of loose neutron-halo nucleus structure on the fragmentation and
momentum dissipation in heavy ion collisions. Phys. Lett. B 617, 24–32 (2005)
14. M.K. Sharma et al., Search for halo structure in 37 Mg using the Glauber model and microscopic
relativistic mean-field densities. Phys. Rev. C 93, 014322 (2016)
15. M. Takechi et al., Evidence of halo structure in 37 Mg observed via reaction cross sections and
intruder orbitals beyond the island of inversion. Phys. Rev. C 90, 061305 (2014)
16. Ch. Hartnack et al., Modelling the many-body dynamics of heavy ion collisions: Present status
and future perspective. Eur. Phys. J. A 1, 151–169 (1998)
17. J. Aichelin, Quantum molecular dynamics a dynamical microscopic n-body approach to investigate fragment formation and the nuclear equation of state in heavy ion collisions. Phys. Rep.
202, 233–360 (1991)
18. R. Kumar, S. Gautam, R.K. Puri, Multifragmentation within a clusterization algorithm based
on thermal binding energies. Phys. Rev. C 89, 064608 (2014); R. Kumar, R.K. Puri, Using
experimental data to test an -body dynamical model coupled with an energy-based clusterization
algorithm at low incident energies. Phys. Rev. C 97, 034624 (2018)
19. Sucheta, R. Kumar, R.K. Puri, On the study of fragmentation of loosely bound nuclei using
dynamical model. Proc. DAE Symp. Nucl. Phys. 63, 556–557 (2018)
20. D. Sisan et al., Intermediate mass fragment emission in heavy-ion collisions: energy and system
mass dependence. Phys. Rev. C 63, 027602 (2001)
21. P. Bansal, S. Gautam, R.K. Puri, On the peak mass production of different fragments in
intermediate-energy heavy-ion collisions. Eur. Phys. J. A 51, 139 (2015)
22. A. Sharma, A. Bharti, Isospin effects via Coulomb forces on the onset of multifragmentation
in light and heavily charged systems. Eur. Phys. J. A 52, 42 (2016)
23. S. Kaur, A.D. Sood, Model ingredients and peak mass production in heavy-ion collisions. Phys.
Rev. C 82, 054611 (2010)
24. S. Kaur, R.K. Puri, Isospin effects on the energy of peak mass production. Phys. Rev. C 87,
014620 (2013)
25. S. Sood, R. Kumar, A. Sharma, R.K. Puri, Cluster formation and phase transition in nuclear
disassembly using a variety of clusterization algorithms. Phys. Rev. C 99, 054612 (2019)
26. R. Kumar, S. Sood, A. Sharma, R.K. Puri, On the multifragmentation and phase transition in
the perspectives of different n-body dynamical models. Act. Phys. Pol. B 49, 301–306 (2018)
