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量子光学——降噪,囚禁离子,量子轨道和退相干(影印版)


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量子光学——降噪,囚禁离子,量子轨道和退相干(影印版)
  • 书号:9787030187895
    作者:(智)欧尔萨格(Orszag,M.)编著;
  • 外文书名:Quantum Optics—Including Noise Reduction,Trapped Ions,Quantun Trajectories,and Decoherence
  • 装帧:精装
    开本:B5
  • 页数:384
    字数:443000
    语种:英文
  • 出版社:科学出版社
    出版时间:2007-04-01
  • 所属分类:O43 光学
  • 定价: ¥58.00元
    售价: ¥45.82元
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本书介绍了一些与激光有关的现象,这些现象是科学家和工程师进行量子光学和激光物理研究的基础。主要内容包括:电磁场的量子化,相干性的量子理论,原子与场的相互作用模型,共振发光,量子阻尼理论,运用了主方程和朗之万方法的激光理论,激光的相关发射,输入-输出理论及其在非线性光学中的应用,量子轨道,原子光学,量子非破坏性测量及保罗阱中离子非经典振动态的产生。本书概念清晰,利于教学,在光学现象的介绍中,兼顾理论和最新的相关实验。
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目录

  • 1. Einstein\'s Theory of Atom-Radiation Interaction
    1.1 The A and B Coefficients
    1.2 Thermal Equilibrium
    1.3 Photon Distribution and Fluctuations
    1.4 Light Beam Incident on Atoms
    1.5 Elementary Laser Theory
    Problems
    2. Atom-Field Interaction: Semiclassical Approach
    2.1 Broad-Band Radiation Spectrum
    2.2 Rabi Oscillations
    2.3 Bloch\'s Equations
    2.4 Decay to an Unobserved Level
    2.5 Decay Between Levels
    2.6 Optical Nutation
    Problems
    3. Quantization of the Electromagnetic Field
    3.1 Fock States
    3.2 Density of Modes
    3.3 Commutation Relations
    Problems
    4. States of the Electromagnetic Field I
    4.1 Further Properties
    4.2 Mixed State. Thermal Radiation
    Problems
    5. States of the Electromagnetic Field II
    5.1 Squeezed States. General Properties and Detection
    5.2 Multimode Squeezed States
    5.3 Detection of Squeezed States
    Problems
    6. Quantum Theory of Coherence
    6.1 One-Atom Detector
    6.2 The n-Atom Detector
    6.3 General Properties of the Correlation Functions
    6.4 Young\'s Interference and First-Order Correlation
    6.5 Second-Order Correlations. Photon Bunching and Antibunching
    6.6 Photon Counting
    Problems
    7. Phase Space Description
    7.1 Q-Representation. Antinormal Ordering
    7.2 Characteristic Function
    7.3 P-Representation: Normal Ordering
    7.4 The Wigner Distribution: Symmetric Ordering
    Problems
    8. Atom-Field Interaction
    8.1 Atom-Field Hamiltonian and the Dipole Approximation
    8.2 A Two-Level Atom Interacting with a Single Field Mode
    8.3 The Dressed State Picture. Quantum Rabi Oscillations
    8.4 Collapse and Revivals
    Problems
    9. System-Reservoir Interactions
    9.1 Quantum Theory of Damping
    9.2 General Properties
    9.3 Expectation Values of Relevant Physical Quantities
    9.4 Time Evolution of the Density Matrix Elements
    9.5 The Glauber-Sudarshan Representation and the Fokker-Planck Equation
    9.6 Time-Dependent Solution. The Method of the Eigenfunctions
    9.7 Langevin\'s Equations
    9.8 Other Master Equations
    Problems
    10. Resonance Fluorescence
    10.1 Background
    10.2 Heisenberg\'s Equations
    10.3 Spectral Density and the Wiener-Khinchine Theorem
    10.4 Emission Spectra from Strongly Driven Two-Level Atoms
    10.5 Intensity Correlations
    Problems
    11. Quantum Laser Theory. Master Equation Approach
    11.1 Heuristic Discussion of Injection Statistics
    11.2 Master Equation for Generalized Pump Statistics
    11.3 The Quantum Theory of the Laser. Random Injection (p=0)
    11.4 Quantum Theory of the Micromaser Random Injection (p=0)
    11.5 Quantum Theory of the Laser and the Micromaser with Pump Statistics (p≠0)
    Problems
    12. Quantum Laser Theory. Langevin Approach
    12.1 Quantum Langevin Equations
    12.2 C-Number Langevin Equations
    12.3 Phase and Intensity Fluctuations
    12.4 Discussion
    Problems
    13. Quantum Noise Reduction I
    13.1 Correlated Emission Laser (CEL) Systems: The Quantum Beat Laser
    13.2 Other CEL Systems
    Problems
    14. Quantum Noise Reduction II
    14.1 Introduction to Non-linear Optics
    14.2 Parametric Processes Without Losses
    14.3 Input-Output Theory
    14.4 The Degenerate Parametric Oscillator
    14.5 Experimental Results
    Problems
    15. Quantum Phase
    15.1 The Dirac Phase
    15.2 The Louisell Phase
    15.3 The Susskind-Glogower Phase
    15.4 The Pegg-Barnett Phase
    15.5 Phase Fluctuations in a Laser
    Problems
    16. Quantum Trajectories
    16.1 Monte Carlo Wavefimction Method
    16.2 The Stochastic SchrSdinger Equation
    16.3 Stochastic SchrSdinger Equations and Dissipative Systems
    16.4 Simulation of a Monte Carlo SSE
    16.5 Simulation of the Homodyne SSDE
    16.6 Numerical Results and Localization
    16.7 Conclusions
    Problems
    17. Atom Optics
    17.1 Optical Elements
    17.2 Atomic Diffraction from an Optical Standing Wave
    17.3 Atomic Focusing
    Problems
    18. Measurements, Quantum Limits and all That
    18.1 Quantum Standard Limit
    18.2 Quantum Non-demolition (QND) Measurements
    18.3 QND Measurement of the Number of Photons in a Cavity
    18.4 Quantum Theory of Continuous Photodetection Processes
    Problems
    19. Trapped Ions
    19.1 Paul Trap
    19.2 The Trapped Ion in the Raman Scheme
    Problems
    20. Decoherence
    20.1 Dynamics of the Correlations
    20.2 How Long Does it Take to Decohere?
    Problems
    A. Operator Relations
    A.1 Theorem 1
    A.2 Theorem 2. The Baker-Campbell-Haussdorf Relation
    A.3 Theorem 3. Similarity Transformation
    B. The Method of Characteristics
    C. Proof of Eq. (12.37)
    D. Stochastic Processes in a Nutshell
    D.1 Introduction
    D.2 Probability Concepts
    D.3 Stochastic Processes
    D.4 The Fokker-Planck Equation
    D.5 Stochastic Differential Equations
    D.6 Approximate Methods
    E. Derivation of the Homodyne Stochastic Schrödinger Differential Equation
    F. Fluctuations
    Hints for Solutions of Problems
    References
    Index
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