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Thermal Quantum Field Theory and Perturbative Non-Equilibrium Dynamics (Hardcover, 2014 ed.): Peter Millington Thermal Quantum Field Theory and Perturbative Non-Equilibrium Dynamics (Hardcover, 2014 ed.)
Peter Millington
R4,318 R3,389 Discovery Miles 33 890 Save R929 (22%) Ships in 12 - 17 working days

The author develops a new perturbative formalism of non-equilibrium thermal quantum field theory for non-homogeneous backgrounds. As a result of this formulation, the author is able to show how so-called pinch singularities can be removed, without resorting to ad hoc prescriptions, or effective resummations of absorptive effects. Thus, the author arrives at a diagrammatic approach to non-equilibrium field theory, built from modified Feynman rules that are manifestly time-dependent from tree level. This new formulation provides an alternative framework in which to derive master time evolution equations for physically meaningful particle number densities, which are valid to all orders in perturbation theory and to all orders in gradient expansion. Once truncated in a loop-wise sense, these evolution equations capture non-equilibrium dynamics on all time-scales, systematically describing energy-violating processes and the non-Markovian evolution of memory effects

Thermal Quantum Field Theory and Perturbative Non-Equilibrium Dynamics (Paperback, Softcover reprint of the original 1st ed.... Thermal Quantum Field Theory and Perturbative Non-Equilibrium Dynamics (Paperback, Softcover reprint of the original 1st ed. 2014)
Peter Millington
R3,437 Discovery Miles 34 370 Ships in 10 - 15 working days

The author develops a new perturbative formalism of non-equilibrium thermal quantum field theory for non-homogeneous backgrounds. As a result of this formulation, the author is able to show how so-called pinch singularities can be removed, without resorting to ad hoc prescriptions, or effective resummations of absorptive effects. Thus, the author arrives at a diagrammatic approach to non-equilibrium field theory, built from modified Feynman rules that are manifestly time-dependent from tree level. This new formulation provides an alternative framework in which to derive master time evolution equations for physically meaningful particle number densities, which are valid to all orders in perturbation theory and to all orders in gradient expansion. Once truncated in a loop-wise sense, these evolution equations capture non-equilibrium dynamics on all time-scales, systematically describing energy-violating processes and the non-Markovian evolution of memory effects

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