Microscopic model approaches to fragmentation of nuclei and phase transitions in nuclear matter
arXiv:nucl-th/0009023 · doi:10.1016/S0370-1573(00)00120-4
Abstract
The properties of excited nuclear matter and the quest for a phase transition which is expected to exist in this system are the subject of intensive investigations. High energy nuclear collisions between finite nuclei which lead to matter fragmentation are used to investigate these properties. The present report covers effective work done on the subject over the two last decades. The analysis of experimental data is confronted with two major problems, the setting up of thermodynamic equilibrium in a time-dependent fragmentation process and the finite size of nuclei. The present status concerning the first point is presented. Simple classical models of disordered systems are derived starting with the generic bond percolation approach. These lattice and cellular equilibrium models, like percolation approaches, describe successfully experimental fragment multiplicity distributions. They also show the properties of systems which undergo a thermodynamic phase transition. Physical observables which are devised to show the existence and to fix the order of critical behaviour are presented. Applications to the models are shown. Thermodynamic properties of finite systems undergoing critical behaviour are advantageously described in the framework of the microcanonical ensemble. Applications to the designed models and to experimental data are presented and analysed. Perspectives of further developments of the field are suggested.
150 pages including 28 figures. To be published in Phys. Rep. Corrected discussion in section 3.2.3 and new Fig.5. New caption of Fig.28
References in corpus (18)
- Isospin Fractionation in Nuclear Multifragmentation
- Universal Fluctuations in Correlated Systems
- Molecular Dynamics for Fermions
- Negative heat capacity in the critical region of nuclear fragmentation: an experimental evidence of the liquid-gas phase transition
- Isospin-tracing: A probe of non-equilibrium in central heavy-ion collisions
- Spinodal decomposition of low-density asymmetric nuclear matter
- Classification of phase transitions in small systems
- Application of Information Theory in Nuclear Liquid Gas Phase Transition
- Phase Transitions in "Small" systems
- Signals for a Transition from Surface to Bulk Emission in Thermal Multifragmentation
- Universal features of the order-parameter fluctuations : reversible and irreversible aggregation
- Fragment Kinetic Energies and Modes of Fragment Formation
- Statistical signatures of critical behavior in small systems
- Droplets in the coexistence region of the two-dimensional Ising model
- Nuclear isotope thermometry
- Spectator and participant decay in heavy ion collisions
- Finite size effects and the order of a phase transition in fragmenting nuclear systems
- A statistical interpretation of the correlation between intermediate mass fragment multiplicity and transverse energy
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- Dynamics of many-particle fragmentation in a Cellular Automaton model
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