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Quantum kinetic theory[electronic re...
~
Bonitz, Michael.
Quantum kinetic theory[electronic resource] /
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
杜威分類號:
530.144
書名/作者:
Quantum kinetic theory/ by Michael Bonitz.
作者:
Bonitz, Michael.
出版者:
Cham : : Springer International Publishing :, 2016.
面頁冊數:
xviii, 406 p. : : ill. (some col.), digital ;; 24 cm.
Contained By:
Springer eBooks
標題:
Many-body problem.
標題:
Quantum theory.
標題:
Physics.
標題:
Quantum Physics.
標題:
Solid State Physics.
標題:
Physical Chemistry.
標題:
Plasma Physics.
ISBN:
9783319241210
ISBN:
9783319241197
內容註:
Introduction -- Reduced Density Operators -- Correlations due to the Spin Statistics -- Mean-Field Approximation -- Correlations and their Dynamics -- Non-Markovian Effects -- Kinetic Equations with Selfenergy -- Properties of the Kinetic Equation -- T-Matrix Approximation -- Random Phase Approximation -- Screened Ladder Approximation -- Charged Carriers in EM Fields -- Non-Equilibrium Green's Functions -- Kinetics vs. Molecular Dynamics -- Conclusion.
摘要、提要註:
This book presents quantum kinetic theory in a comprehensive way. The focus is on density operator methods and on non-equilibrium Green functions. The theory allows to rigorously treat nonequilibrium dynamics in quantum many-body systems. Of particular interest are ultrafast processes in plasmas, condensed matter and trapped atoms that are stimulated by rapidly developing experiments with short pulse lasers and free electron lasers. To describe these experiments theoretically, the most powerful approach is given by non-Markovian quantum kinetic equations that are discussed in detail, including computational aspects.
電子資源:
http://dx.doi.org/10.1007/978-3-319-24121-0
Quantum kinetic theory[electronic resource] /
Bonitz, Michael.
Quantum kinetic theory
[electronic resource] /by Michael Bonitz. - 2nd ed. - Cham :Springer International Publishing :2016. - xviii, 406 p. :ill. (some col.), digital ;24 cm.
Introduction -- Reduced Density Operators -- Correlations due to the Spin Statistics -- Mean-Field Approximation -- Correlations and their Dynamics -- Non-Markovian Effects -- Kinetic Equations with Selfenergy -- Properties of the Kinetic Equation -- T-Matrix Approximation -- Random Phase Approximation -- Screened Ladder Approximation -- Charged Carriers in EM Fields -- Non-Equilibrium Green's Functions -- Kinetics vs. Molecular Dynamics -- Conclusion.
This book presents quantum kinetic theory in a comprehensive way. The focus is on density operator methods and on non-equilibrium Green functions. The theory allows to rigorously treat nonequilibrium dynamics in quantum many-body systems. Of particular interest are ultrafast processes in plasmas, condensed matter and trapped atoms that are stimulated by rapidly developing experiments with short pulse lasers and free electron lasers. To describe these experiments theoretically, the most powerful approach is given by non-Markovian quantum kinetic equations that are discussed in detail, including computational aspects.
ISBN: 9783319241210
Standard No.: 10.1007/978-3-319-24121-0doiSubjects--Topical Terms:
394358
Many-body problem.
LC Class. No.: QC174.17.P7
Dewey Class. No.: 530.144
Quantum kinetic theory[electronic resource] /
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Introduction -- Reduced Density Operators -- Correlations due to the Spin Statistics -- Mean-Field Approximation -- Correlations and their Dynamics -- Non-Markovian Effects -- Kinetic Equations with Selfenergy -- Properties of the Kinetic Equation -- T-Matrix Approximation -- Random Phase Approximation -- Screened Ladder Approximation -- Charged Carriers in EM Fields -- Non-Equilibrium Green's Functions -- Kinetics vs. Molecular Dynamics -- Conclusion.
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This book presents quantum kinetic theory in a comprehensive way. The focus is on density operator methods and on non-equilibrium Green functions. The theory allows to rigorously treat nonequilibrium dynamics in quantum many-body systems. Of particular interest are ultrafast processes in plasmas, condensed matter and trapped atoms that are stimulated by rapidly developing experiments with short pulse lasers and free electron lasers. To describe these experiments theoretically, the most powerful approach is given by non-Markovian quantum kinetic equations that are discussed in detail, including computational aspects.
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