CORTICAL PHASE TRANSITIONS, NONEQUILIBRIUM THERMODYNAMICS AND THE TIME-DEPENDENT GINZBURG–LANDAU EQUATION

Author:

FREEMAN WALTER J.1,LIVI ROBERTO2,OBINATA MASASHI34,VITIELLO GIUSEPPE3

Affiliation:

1. Department of Molecular and Cell Biology, University of California, Berkeley, CA 94720-3206, USA

2. Dipartimento di Fisica – CSDC and Istituto Nazionale di Fisica Nucleare, Universitá di Firenze, I-50019 Sesto Fiorentino, Italy

3. Facoltá di Scienze and Istituto Nazionale di Fisica Nucleare, Universitá di Salerno, I-84100 Fisciano (Salerno), Italy

4. Department of Physics, Tsukuba University, Tsukuba, Japan

Abstract

The formation of amplitude modulated and phase modulated assemblies of neurons is observed in the brain functional activity. The study of the formation of such structures requires that the analysis has to be organized in hierarchical levels, microscopic, mesoscopic, macroscopic, each with its characteristic space-time scales and the various forms of energy, electric, chemical, thermal produced and used by the brain. In this paper, we discuss the microscopic dynamics underlying the mesoscopic and the macroscopic levels and focus our attention on the thermodynamics of the nonequilibrium phase transitions. We obtain the time-dependent Ginzburg–Landau equation for the nonstationary regime and consider the formation of topologically nontrivial structures such as the vortex solution. The power laws observed in functional activities of the brain is also discussed and related to coherent states characterizing the many-body dissipative model of brain.

Publisher

World Scientific Pub Co Pte Lt

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

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