Principles of Laser Spectroscopy and Quantum Optics / / Vladimir S. Malinovsky, Paul R. Berman.

Principles of Laser Spectroscopy and Quantum Optics is an essential textbook for graduate students studying the interaction of optical fields with atoms. It also serves as an ideal reference text for researchers working in the fields of laser spectroscopy and quantum optics. The book provides a rigo...

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Bibliographic Details
Superior document:Title is part of eBook package: De Gruyter Princeton University Press eBook-Package Backlist 2000-2013
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Place / Publishing House:Princeton, NJ : : Princeton University Press, , [2010]
©2011
Year of Publication:2010
Language:English
Online Access:
Physical Description:1 online resource (544 p.) :; 96 line illus. 5 tables.
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Other title:Frontmatter --
Contents --
Preface --
1 .Preliminaries --
2. Two-Level Quantum Systems --
3. Density Matrix for a Single Atom --
4. Applications of the Density Matrix Formalism --
5. Density Matrix Equations: Atomic Center-of-Mass Motion, Elementary Atom Optics, and Laser Cooling --
6. Maxwell-Bloch Equations --
7. Two-Level Atoms in Two or More Fields: Introduction to Saturation Spectroscopy --
8. Three-Level Atoms: Applications to Nonlinear Spectroscopy-Open Quantum Systems --
9. Three-Level Λ Atoms: Dark States, Adiabatic Following, and Slow Light --
10. Coherent Transients --
11. Atom Optics and Atom Interferometry --
12. The Quantized, Free Radiation Field --
13. Coherence Properties of the Electric Field --
14. Photon Counting and Interferometry --
15. Atom-Quantized Field Interactions --
16. Spontaneous Decay --
17. Optical Pumping and Optical Lattices --
18. Sub-Doppler Laser Cooling --
19. Operator Approach to Atom-Field Interactions: Source-Field Equation --
20. Light Scattering --
21. Entanglement and Spin Squeezing --
Index
Summary:Principles of Laser Spectroscopy and Quantum Optics is an essential textbook for graduate students studying the interaction of optical fields with atoms. It also serves as an ideal reference text for researchers working in the fields of laser spectroscopy and quantum optics. The book provides a rigorous introduction to the prototypical problems of radiation fields interacting with two- and three-level atomic systems. It examines the interaction of radiation with both atomic vapors and condensed matter systems, the density matrix and the Bloch vector, and applications involving linear absorption and saturation spectroscopy. Other topics include hole burning, dark states, slow light, and coherent transient spectroscopy, as well as atom optics and atom interferometry. In the second half of the text, the authors consider applications in which the radiation field is quantized. Topics include spontaneous decay, optical pumping, sub-Doppler laser cooling, the Heisenberg equations of motion for atomic and field operators, and light scattering by atoms in both weak and strong external fields. The concluding chapter offers methods for creating entangled and spin-squeezed states of matter. Instructors can create a one-semester course based on this book by combining the introductory chapters with a selection of the more advanced material. A solutions manual is available to teachers. Rigorous introduction to the interaction of optical fields with atoms Applications include linear and nonlinear spectroscopy, dark states, and slow light Extensive chapter on atom optics and atom interferometry Conclusion explores entangled and spin-squeezed states of matter Solutions manual (available only to teachers)
Format:Mode of access: Internet via World Wide Web.
ISBN:9781400837045
9783110442502
DOI:10.1515/9781400837045?locatt=mode:legacy
Access:restricted access
Hierarchical level:Monograph
Statement of Responsibility: Vladimir S. Malinovsky, Paul R. Berman.