
Springer Handbook of Atomic, Molecular, and Optical Physics
Résumé
This Springer Handbook of Atomic, Molecular, and Optical Physics comprises a comprehensive reference source that unifies the entire fields of atomic, molecular, and optical (AMO) physics, assembling the principal ideas, techniques and results of the field from atomic spectroscopy to applications in comets. Its 92 chapters are written by over 100 authors, all leaders in their respective disciplines.
Carefully edited to ensure uniform coverage and style, with extensive cross references, and acting as a guide to the primary research literature, it is both a source of information and an inspiration for graduate students and other researchers new to the field. Relevant diagrams, graphs, and tables of data are provided throughout the text.
Substantially updated and expanded since the 1996 edition and published in conjunction with the 2005 World Year of Physics (commemorating Einstein's 1905 "miracle year"), it contains several entirely new chapters covering current areas of great research interest, such as Bose - Einstein condensation, quantum information, and cosmological variations of the fundamental constants. A fully searchable CD-ROM version of the contents accompanies the handbook.
Written for: Physicists, graduate students and professionals in atomic, molecular, and optical physics, as well as those in condensed-matter and plasma physics, chemistry, and engineering
Sommaire
- Units and Constants
- Part A Mathematical Methods
- Angular Momentum Theory
- Group Theory for Atomic Shells
- Dynamical Groups
- Perturbation Theory
- Second Quantization
- Density Matrices
- Computational Techniques
- Hydrogenic Wave Functions
- Part B Atoms
- Atomic Spectroscopy
- High Precision Calculations for Helium
- Atomic Multipoles
- Atoms in Strong Fields
- Rydberg Atoms
- Rydberg Atoms in Strong Static Fields
- Hyperfine Structure
- Precision Oscillator Strength and Lifetime Measurements
- Ion Beam Spectroscopy
- Line Shapes and Radiation Transfer
- Thomas - Fermi and Other Density-Functional Theories
- Atomic Structure: Multiconfiguration Hartree - Fock Theories
- Relativistic Atomic Structure
- Many-Body Theory of Atomic Structure and Processes
- Photoionization of Atoms
- Autoionization
- Green's Functions of Field Theory
- Quantum Electrodynamics
- Tests of Fundamental Physics
- Parity Nonconserving Effects in Atoms
- Atomic Clocks and Constraints on Variations of Fundamental Constants
- Part C Molecules
- Molecular Structure
- Molecular Symmetry and Dynamics
- Radiative Transition Probabilities
- Molecular Photodissociation
- Time-Resolved Molecular Dynamics
- Nonreactive Scattering
- Gas Phase Reactions
- Gas Phase Ionic Reactions
- Clusters
- Infrared Spectroscopy
- Laser Spectroscopy in the Submillimeter and Far-Infrared Region
- Spectroscopic Techniques: Lasers
- Spectroscopic Techniques: Cavity-Enhanced Methods
- Spectroscopic Techniques: Ultraviolet
- Part D Scattering Theory
- Elastic Scattering: Classical, Quantal, and Semiclassical
- Orientation and Alignment in Atomic and Molecular Collisions
- Electron-Atom, Electron-Ion, and Electron-Molecule Collisions
- Positron Collisions
- Adiabatic and Diabatic Collision Processes at Low Energies
- Ion -Atom and Atom - Atom Collisions
- Ion - Atom Charge Transfer Reactions at Low Energies
- Continuum Distorted-Wave and Wannier Methods
- Ionization in High Energy Ion - Atom Collisions
- Electron - Ion and Ion - Ion Recombination
- Dielectronic Recombination
- Rydberg Collisions: Binary Encounter, Born and Impulse Approximations
- Mass Transfer at High Energies: Thomas Peak
- Classical Trajectory and Monte Carlo Techniques
- Collisional Broadening of Spectral Lines
- Part E Scattering Experiment
- Photodetachment
- Photon - Atom Interactions: Low Energy
- Photon - Atom Interactions: Intermediate Energies
- Electron - Atom and Electron - Molecule Collisions
- Ion - Atom Scattering Experiments: Low Energy
- Ion - Atom Collisions:High Energy
- Reactive Scattering
- Ion - Molecule Reactions
- Part F Quantum Optics
- Light - Matter Interaction
- Absorption and Gain Spectra
- Laser Principles
- Types of Lasers
- Nonlinear Optics
- Coherent Transients
- Multiphoton and Strong-Field Processes
- Cooling and Trapping
- Quantum Degenerate Gases: Bose - Einstein Condensation
- De Broglie Optics
- Quantized Field Effects
- Entangled Atoms and Fields: Cavity QED
- Quantum Optical Tests of the Foundations of Physics
- Quantum Information
- Part G Applications
- Applications of Atomic and Molecular Physics to Astrophysics
- Comets
- Aeronomy
- Applications of Atomic and Molecular Physics to Global Change
- Atoms in Dense Plasmas
- Conduction of Electricity in Gases
- Applications to Combustion
- Surface Physics
- Interface with Nuclear Physics
- Charged-Particle - Matter Interactions
- Radiation Physics
- About the Authors
Caractéristiques techniques
PAPIER | |
Éditeur(s) | Springer |
Auteur(s) | Gordon Drake |
Parution | 26/09/2005 |
Édition | 2eme édition |
Nb. de pages | 1500 |
Format | 20 x 25 |
Couverture | Relié |
Poids | 3150g |
Intérieur | Noir et Blanc |
EAN13 | 9780387208022 |
ISBN13 | 978-0-387-20802-2 |
Avantages Eyrolles.com
Nos clients ont également acheté
Consultez aussi
- Les meilleures ventes en Graphisme & Photo
- Les meilleures ventes en Informatique
- Les meilleures ventes en Construction
- Les meilleures ventes en Entreprise & Droit
- Les meilleures ventes en Sciences
- Les meilleures ventes en Littérature
- Les meilleures ventes en Arts & Loisirs
- Les meilleures ventes en Vie pratique
- Les meilleures ventes en Voyage et Tourisme
- Les meilleures ventes en BD et Jeunesse
- Sciences Physique Physique fondamentale Optique
- Sciences Physique Physique fondamentale Physique des ondes
- Sciences Physique Physique fondamentale Physique des particules
- Sciences Physique Physique fondamentale Physique nucléaire et atomique
- Sciences Etudes et concours Classes préparatoires et grandes écoles - Livres classes prépas scientifiques Physique
- Sciences Techniques Electronique Optoélectronique