Collective Atom–Light Interactions in Dense Atomic Vapours
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"Collective Atom–Light Interactions in Dense Atomic Vapours" by James Keaveney is a physics book focused on Light & Optics. Best for students, educators, and scientifically curious readers.
The propagation of light in 'dense media' where dipole-dipole interactions play a role is a fundamental topic that was first studied in the work of Clausius, Mossotti, Lorenz and Lorentz in the latter half of the nineteenth century. However, until recently there remained some areas of controversy: for example, whereas the Lorentz model for a gas predicts a resonance shift, a discrete dipole model does not. This thesis makes the first combined measurement of both the Lorentz shift and the associated collective Lamb shift. This clear experimental result stimulated new theoretical work that has significantly advanced our understanding of light propagation in interacting media.
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"Collective Atom–Light Interactions in Dense Atomic Vapours" by James Keaveney is a physics book focused on Light & Optics. Best for students, educators, and scientifically curious readers.
Topic: Light & Optics
Author: James Keaveney
Who this is for:
- Physics students
- Science-minded readers
- Readers building technical understanding
Why this book matters: It provides structured coverage of physics concepts in a way that supports deeper understanding and continued study.
The propagation of light in 'dense media' where dipole-dipole interactions play a role is a fundamental topic that was first studied in the work of Clausius, Mossotti, Lorenz and Lorentz in the latter half of the nineteenth century. However, until recently there remained some areas of controversy: for example, whereas the Lorentz model for a gas predicts a resonance shift, a discrete dipole model does not. This thesis makes the first combined measurement of both the Lorentz shift and the associated collective Lamb shift. This clear experimental result stimulated new theoretical work that has significantly advanced our understanding of light propagation in interacting media.
| Author | James Keaveney |
| Publisher | Springer |
| Published | 2014-06-16 |
| ISBN-13 | 9783319070995 |
| Binding | Hardcover |
| Pages | 144 |
| Language | English |
| Subjects | Science |
| Topic | Light & Optics |
| Series | Springer Theses |
Format: Hardcover
Length: 144 pages
Language: English
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