Out-of-equilibrium physics of correlated electron systems
著者
書誌事項
Out-of-equilibrium physics of correlated electron systems
(Springer series in solid-state sciences, v. 191)
Springer, c2018
大学図書館所蔵 全13件
  青森
  岩手
  宮城
  秋田
  山形
  福島
  茨城
  栃木
  群馬
  埼玉
  千葉
  東京
  神奈川
  新潟
  富山
  石川
  福井
  山梨
  長野
  岐阜
  静岡
  愛知
  三重
  滋賀
  京都
  大阪
  兵庫
  奈良
  和歌山
  鳥取
  島根
  岡山
  広島
  山口
  徳島
  香川
  愛媛
  高知
  福岡
  佐賀
  長崎
  熊本
  大分
  宮崎
  鹿児島
  沖縄
  韓国
  中国
  タイ
  イギリス
  ドイツ
  スイス
  フランス
  ベルギー
  オランダ
  スウェーデン
  ノルウェー
  アメリカ
注記
Includes bibliographical references and index
内容説明・目次
内容説明
This book is a wide-ranging survey of the physics of out-of-equilibrium systems of correlated electrons, ranging from the theoretical, to the numerical, computational and experimental aspects. It starts from basic approaches to non-equilibrium physics, such as the mean-field approach, then proceeds to more advanced methods, such as dynamical mean-field theory and master equation approaches. Lastly, it offers a comprehensive overview of the latest advances in experimental investigations of complex quantum materials by means of ultrafast spectroscopy.
目次
- Chapter I Prof. Enrico Arrigoni Institut fur Theoretische Physik Technische Universitat Graz Petersgasse 16, A-8010 Graz, Austria: Master equation versus Keldysh Green's functions for correlated quantum systems out of equilibrium" (i) Master Equation, Closed vs open quantum systems. System bath and reduced density matrix. (ii) Quantum operations, Kraus Operators, Markovian assumption, Lindblad master equation, dissipation. (iii) Solution methods for the many body case. Superfermion representation. (iv) Relation with Keldysh Green's functions. When is a bath Markovian? (v) How to treat the non Markovian case. Application to correlated quantum impurities and DMFT. Chapter II Prof. Massimo Capone SISSA Via Bonomea 265, I-34136 Trieste - Italy "Towards an understanding of superconductors and correlated materials out-of-equilibrium: mean-field approaches" (i) Equilibrium Methods for Strongly Correlated Electrons: the Gutzwiller approxi mation and Dynamical Mean-field Theory. (ii) The non-equilibrium Gutzwiller approximation. (iii) Strongly Correlated Systems in a constant Electric field: Dissipation and Dielectric Breakdown. (iv) Non-equilibrium dynamics of Superconductors. BCS superconductors, s-wave, d-wave and p+ip wave. (v) Pump and probe dynamics of High-temperature superconductors: A theorist's perspective. Chapter III Prof. Dr. Martin Eckstein Max-Planck-Institut fur Struktur und Dynamik der Materie Luruper Chaussee 149, Geb. 99 (CFEL), 22761 Hamburg Germany "Electronic structure of correlated materials out of equilibrium: non-equilibrium dynamical mean-field theory" (i) Keldysh formalism: Ultra-fast dynamics of correlated electrons: a) Basics of nonequilibrium Green's functions, the Keldysh contour, real-time path integrals and perturbation theory
- b) Theoretical description of pump-probe experiments. (ii) Relaxation in many-body systems beyond kinetic equations: a) From nonequilibrium Green's functions to kinetic equations
- b) Photo-induced dynamics of systems with electron phonon coupling
- c) From collisionless relaxation to thermalization: Nonthermal melting of a spin-density wave. (iii) Non-equilibrium dynamical mean-field theory: a) Introduction to dynamical mean-field theory (DMFT)
- b) The quantum impurity model out of equilibrium
- c) The Mott-Hubbard metal-insulator transition out of equilibrium: How fast do quasiparticles emerge? (iv) Periodically driven systems: a) The Floquet theorem, band structure of periodically driven systems
- b) Effective Hamiltonians of driven systems: Floquet Schrieffer-Wolff transformation
- c) The time-periodic state: Floquet Green's functions, application to driven BCS superconductors. (v) Electrons and spins out of equilibrium: Magnetic exchange interactions in non equilibrium situations. Chapter IV Prof. Dr. Stefan Kaiser Max Planck Institute for Solid State Research Heisenbergstr. 1, 70569 Stuttgart Germany "U ltrafast optical control of complex quantum materials" (i) Ultrafast Science & Technology: a) How do ultrafast lasers work? What is pump probe spectroscopy?
- b) Which experimental techniques can probe the different dynamical properties? (ii) Photo-doping Dynamics in Correlated Electron Systems: a) How do correlations influence the quasiparticle dynamics?
- b) On what time scales photo-induced phase transitions can occur? (iii) Non-equilibrium Dynamics of Collective Excitations in Complex Materials: a) What kind of collective excitations can be triggered by ultrafast light pulses
- b) "Higgs-spectroscopy" and or vs Amplitudon-phason-dynamics. (iv) Non-linear Phononics and Optical Control of Superconductivity in Cuprates: a) Non-thermal Optical Control of Materials and Superconductivity
- b) Coherent phonons and non-linear phonon interactions. (v) Control of Effective Correlations and Inducing Superconductivity in Organic Quantum Materials: a) Vibrational coupling in organic quantum materials
- b) Effective control of local electronic interactions.
「Nielsen BookData」 より