The world of the complex Ginzburg-Landau equation

Мир комплексного уравнения Гинзбурга—Ландау
Igor S. Aranson, Lorenz Kramer
2002-02-04

Bose-Einstein condensationcomplex Ginzburg-Landau equationnonequilibrium phenomenanonlinear wavessecond-order phase transitions
The cubic complex Ginzburg-Landau equation is one of the most-studied nonlinear equations in the physics community. It describes a vast variety of phenomena from nonlinear waves to second-order phase transitions, from superconductivity, superfluidity, and Bose-Einstein condensation to liquid crystals and strings in field theory. The authors give an overview of various phenomena described by the complex Ginzburg-Landau equation in one, two, and three dimensions from the point of view of condensed-matter physicists. Their aim is to study the relevant solutions in order to gain insight into nonequilibrium phenomena in spatially extended systems.
1
Analysis of relevant solutions to the equation is used to develop insight into nonequilibrium behavior in spatially extended systems.
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The cubic complex Ginzburg–Landau equation models diverse phenomena, including nonlinear waves, second-order phase transitions, superconductivity, superfluidity, Bose–Einstein condensation, liquid crystals, and field-theory strings.
3
The paper provides a condensed-matter-oriented overview of complex Ginzburg–Landau phenomena in one, two, and three spatial dimensions.

cubic complex Ginzburg-Landau equation

solutions of the cubic complex Ginzburg-Landau equation and the nonequilibrium phenomena they reveal in spatially extended systems

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2002-02-04
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Igor S. Aranson
Lorenz Kramer
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