English

Signatures of $\alpha$ clustering in $^{16}$O by using a multiphase transport model

High Energy Physics - Phenomenology 2020-11-18 v1 Nuclear Experiment Nuclear Theory

Abstract

α\alpha-clustered structures in light nuclei could be studied through "snapshots" taken by relativistic heavy-ion collisions. A multiphase transport (AMPT) model is employed to simulate the initial structure of collision nuclei and the proceeding collisions at center of mass energy sNN\sqrt{s_{NN}} = 6.37 TeV. This initial structure can finally be reflected in the subsequent observations, such as elliptic flow (v2v_{2}), triangular flow (v3v_{3}) and quadrangular flow (v4v_4). Three sets of the collision systems are chosen to illustrate system scan is a good way to identify the exotic α\alpha-clustered nuclear structure, case I: 16O\mathrm{^{16}O} nucleus (with or without α\alpha-cluster) + ordinary nuclei (always in Woods-Saxon distribution) in most central collisions, case II: 16O\mathrm{^{16}O} nucleus (with or without α\alpha-cluster) + 197Au\mathrm{^{197}Au} nucleus collisions for centrality dependence, and case III: symmetric collision systems (namely, 10^{10}B + 10^{10}B, 12^{12}C + 12^{12}C, 16^{16}O + 16^{16}O (with or without α\alpha-cluster), 20^{20}Ne + 20^{20}Ne, and 40^{40}Ca + 40^{40}Ca) in most central collisions. Our calculations propose that relativistic heavy-ion collision experiments at sNN\sqrt{s_{NN}} = 6.37 TeV are promised to distinguish the tetrahedron structure of 16O\mathrm{^{16}O} from the Woods-Saxon one and shed lights on the system scan projects in experiments.

Keywords

Cite

@article{arxiv.2010.10003,
  title  = {Signatures of $\alpha$ clustering in $^{16}$O by using a multiphase transport model},
  author = {Yi-An Li and Song Zhang and Yu-Gang Ma},
  journal= {arXiv preprint arXiv:2010.10003},
  year   = {2020}
}

Comments

9 pages, 4 figures; accepted version of Physical Review C