Kristian Blom Blom Pair-Correlation Effects in Many-Body Systems

Pair-Correlation Effects in Many-Body Systems

von Kristian Blom

Towards a Complete Theoretical Description of Pair-Correlations in the Static and Kinetic Description of Many-Body Systems

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Beschreibung

The laws of nature encompass the small, the large, the few, and the many. In this book, we are concerned with classical (i.e., not quantum) many-body systems, which refers to any microscopic or macroscopic system that contains a large number of interacting entities. The nearest-neighbor Ising model, originally developed in 1920 by Wilhelm Lenz, forms a cornerstone in our theoretical understanding of collective effects in classical many-body systems and is to date a paradigm for statistical physics.

Despite its elegant and simplistic description, exact analytical results in dimensions equal and larger than two are difficult to obtain. Therefore, much work has been done to construct methods that allow for approximate, yet accurate, analytical solutions. One of these methods is the Bethe-Guggenheim approximation, originally developed independently by Hans Bethe and Edward Guggenheim in 1935. This approximation goes beyond the well-known mean field approximation and explicitly accounts for pair correlations between the spins in the Ising model.

In this book, we embark on a journey to exploit the full capacity of the Bethe-Guggenheim approximation, in non-uniform and non-equilibrium settings. Throughout we unveil the non-trivial and a priori non-intuitive effects of pair correlations in the classical nearest-neighbor Ising model, which are taken into account in the Bethe-Guggenheim approximation and neglected in the mean field approximation.



The laws of nature encompass the small, the large, the few, and the many. In this book, we are concerned with classical (i.e., not quantum) many-body systems, which refers to any microscopic or macroscopic system that contains a large number of interacting entities. The nearest-neighbor Ising model, originally developed in 1920 by Wilhelm Lenz, forms a cornerstone in our theoretical understanding of collective effects in classical many-body systems and is to date a paradigm in statistical physics.

Despite its elegant and simplistic description, exact analytical results in dimensions equal and larger than two are difficult to obtain. Therefore, much work has been done to construct methods that allow for approximate, yet accurate, analytical solutions. One of these methods is the Bethe-Guggenheim approximation, originally developed independently by Hans Bethe and Edward Guggenheim in 1935. This approximation goes beyond the well-known mean field approximation and explicitly accounts for pair correlations between the spins in the Ising model.

In this book, we embark on a journey to exploit the full capacity of the Bethe-Guggenheim approximation, in non-uniform and non-equilibrium settings. Throughout we unveil the non-trivial and a priori non-intuitive effects of pair correlations in the classical nearest-neighbor Ising model, which are taken into account in the Bethe-Guggenheim approximation and neglected in the mean field approximation.



Provides a comprehensive overview of the Bethe-Guggenheim approximation applied to uniform and non-uniform systems Addresses and advances the derivation of a Cahn-Hilliard free energy from microscopic principles Demonstrates how temperature quenches give rise to a dynamical phase transition in a nearest-neighbor Ising model

Autor*in

Kristian Blom

Themen in »Pair-Correlation Effects in Many-Body Systems«

Lattice Models Cahn-Hilliard Free Energy Cell Adhesion Dynamical Phase Transitions Ising Model Interface & Surface Thermodynamics Bethe-guggenheim Approximation Cluster Variation Approximation Many-body Systems Markovian Dynamics Stochastic Processes Critical Phenomena

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Details

ISBN: 9783031296147
Verlag: Springer International Publishing
Erscheinung: 28.05.2024

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