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Correlations between emission timescale of fragments and isospin dynamics in $^{124}$Sn+$^{64}$Ni and $^{112}$Sn+$^{58}$Ni reactions at 35 AMeV

Authors :
De Filippo, E.
Pagano, A.
Russotto, P.
Amorini, F.
Anzalone, A.
Auditore, L.
Baran, V.
Berceanu, I.
Borderie, B.
Bougault, R.
Bruno, M.
Cap, T.
Cardella, G.
Cavallaro, S.
Chatterjee, M. B.
Chbihi, A.
Colonna, M.
D'Agostino, M.
Dayras, R.
Di Toro, M.
Frankland, J.
Galichet, E.
Gawlikowicz, W.
Geraci, E.
Grzeszczuk, A.
Guazzoni, P.
Kowalski, S.
La Guidara, E.
Lanzalone, G.
Lanzanò, G.
Neindre, N. Le
Lombardo, I.
Maiolino, C.
Papa, M.
Piasecki, E.
Pirrone, S.
Planeta, R.
Politi, G.
Pop, A.
Porto, F.
Rivet, M. F.
Rizzo, F.
Rosato, E.
Schmidt, K.
Siwek-Wilczynska, K.
Skwira-Chalot, I.
Trifirò, A.
Trimarchi, M.
Verde, G.
Vigilante, M.
Wieleczko, J. P.
Wilczynski, J.
Zetta, L.
Zipper, W.
Publication Year :
2012

Abstract

We present a new experimental method to correlate the isotopic composition of intermediate mass fragments (IMF) emitted at mid-rapidity in semi-peripheral collisions with the emission timescale: IMFs emitted in the early stage of the reaction show larger values of $<$N/Z$>$ isospin asymmetry, stronger angular anisotropies and reduced odd-even staggering effects in neutron to proton ratio $<$N/Z$>$ distributions than those produced in sequential statistical emission. All these effects support the concept of isospin "migration", that is sensitive to the density gradient between participant and quasi-spectator nuclear matter, in the so called neck fragmentation mechanism. By comparing the data to a Stochastic Mean Field (SMF) simulation we show that this method gives valuable constraints on the symmetry energy term of nuclear equation of state at subsaturation densities. An indication emerges for a linear density dependence of the symmetry energy.<br />Comment: 17 pages, 7 figures; submitted to Physical Rev. C

Subjects

Subjects :
Nuclear Experiment

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1206.0697
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevC.86.014610