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M. Di Toro

Researcher at University of Catania

Publications -  122
Citations -  3182

M. Di Toro is an academic researcher from University of Catania. The author has contributed to research in topics: Isospin & Nucleon. The author has an hindex of 28, co-authored 121 publications receiving 2995 citations. Previous affiliations of M. Di Toro include Centra & Istituto Nazionale di Fisica Nucleare.

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Reaction dynamics with exotic nuclei

TL;DR: In this paper, the results of ab initio simulations of n -rich, n -poor, heavy-ion collisions, using stochastic isospin-dependent transport equations, are analyzed as a function of beam energy and centrality.
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Results of the ASY-EOS experiment at GSI: The symmetry energy at suprasaturation density

P. Russotto, +94 more
- 09 Sep 2016 - 
TL;DR: In this article, the authors measured directed and elliptic flows of neutrons and light charged particles for the reaction 197Au+197Au at 400 MeV/nucleon incident energy within the ASY-EOS experimental campaign at the GSI laboratory.
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On the Lorentz structure of the symmetry energy

TL;DR: In this article, the authors investigated the density dependence of the symmetry energy in a relativistic description by decomposing the isovector mean field into contributions with different Lorentz covariant properties.
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Fragmentation studies with the CHIMERA detector at LNS in Catania: recent progress

TL;DR: In this paper, the authors present results of recent analysis concerning the production of intermediate mass fragments (IMF) in semi-peripheral collisions, combined with theoretical Boltzmann-Nordheim-Vlasov simulations clearly demonstrate the presence of very fast processes of IMF production in the overlapping region of the target and projectile nuclei during re-separation, i.e. in the time scale comparable with the collision time.
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Fluctuations and dynamical instabilities in heavy-ion reactions

TL;DR: In this paper, the authors present a new method to implement fluctuations in the mean field dynamics assuming local thermal equilibrium, they calculate the fluctuation amplitude according to the statistical value and determine the associated density variance.