Electromagnetic Radiation is a graduate level book on classical electrodynamics with a strong emphasis on radiation. This book is meant to quickly and efficiently introduce students to the electromagnetic radiation science essential to a practicing physicist. While a major focus is on light and its interactions, topics in radio frequency radiation, x-rays, and beyond are also treated. Special emphasis is placed on applications, with many exercises and problems. The format of the book is designed to convey the basic concepts in a mathematically rigorous manner, but with detailed derivations routinely relegated to the accompanying side notes or end of chapter "Discussions".
The book is composed of four parts: Part I is a review of basic E&M (electricity and magnetism), and presents a concise review of topics covered in the subject. Part II addresses the origins of radiation in terms of time variations of charge and current densities within the source, and presents Jefimenko's field equations as derived from retarded potentials. Part III introduces special relativity and its deep connection to Maxwell's equations, together with an introduction to relativistic field theory, as well as the relativistic treatment of radiation from an arbitrarily accelerating charge. A highlight of this part is a chapter on the still partially unresolved problem of radiation reaction on an accelerating charge. Part IV treats the practical problems of electromagnetic radiation interacting with matter, with chapters on energy transport, scattering, diffraction and finally an illuminating, application-oriented treatment of fields in confined environments.
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Richard R. Freeman, Distinguished Professor of Mathematical and Physical Sciences, Emeritus, The Ohio State University, USA; and Edward Teller Professor of Applied Sciences, Emeritus, University of California, Davis, USA, The Ohio State University,James A. King, Senior Scientist, National Security Technologies,Gregory P. Lafyatis, Associate Professor of Physics, The Ohio State University
Richard Freeman received his undergraduate degree in physics from the University of Washington and his Ph.D. from Harvard studying molecular interactions under Norman Ramsey in 1973. He did post-doctoral work at MIT investigating Rydberg atoms under Daniel Kleppner. He spent 20 years at Bell Laboratories developing experimental tools to understand the effects of intense light on atoms and molecules. In 1996, he moved to the University of California where he continued his interests in intense light interactions with matter. In 2003, he was appointed Dean of Mathematical and Physical Sciences at The Ohio State University where he continued his studies of matter under extreme conditions.
James A. King received a Bachelor's degree in Physics and a PhD in Applied Science from University of Nevada, Las Vegas and University of California, Davis, respectively. He worked at LLNL as a graduate student and at UCSD and OSU and a postdoctoral researcher. Presently he is employed by NSTec.
Gregory Lafyatis received his undergraduate degree in electrical engineering from MIT and Ph. D in physics from Harvard where he experimentally studied atomic and molecular processes of astrophysical interest. His post-doctoral work included helping to develop a single ion trap for use in ultra-high precision mass spectroscopy and early work in trapping laser cooled neutral atoms. In his faculty position at Ohio State University, he has made contributions in a variety of atomic, molecular, and optical physics including cold atom experiments, condensed matter motivated atomic beam experiments, biologically motivated optical tweezer experiments, and single photon detectors for quantum information applications.
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Seller: Bookbot, Prague, Czech Republic
Hardcover. Condition: Fine. Leichte Rillen / Abschurfungen / Risse / Knicke. This graduate-level book on classical electrodynamics emphasizes electromagnetic radiation, aiming to efficiently introduce essential concepts for practicing physicists. It covers light interactions and extends to radio frequency radiation, x-rays, and more. The focus on applications is complemented by numerous exercises and problems. The structure conveys fundamental concepts rigorously, with detailed derivations often placed in side notes or end-of-chapter discussions. The book is divided into four parts: Part I reviews basic electricity and magnetism, providing a concise overview of key topics. Part II explores the origins of radiation, discussing time variations of charge and current densities, along with Jefimenko's field equations derived from retarded potentials. Part III introduces special relativity and its connection to Maxwell's equations, including relativistic field theory and the treatment of radiation from accelerating charges, featuring a chapter on the unresolved issue of radiation reaction. Part IV addresses practical problems of electromagnetic radiation interacting with matter, covering energy transport, scattering, diffraction, and an application-oriented discussion of fields in confined environments. Seller Inventory # b856e75d-7f41-4df5-b8e6-a60ba2294bc4
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Hardback. Condition: New. Electromagnetic Radiation is a graduate level book on classical electrodynamics with a strong emphasis on radiation. This book is meant to quickly and efficiently introduce students to the electromagnetic radiation science essential to a practicing physicist. While a major focus is on light and its interactions, topics in radio frequency radiation, x-rays, and beyond are also treated. Special emphasis is placed on applications, with many exercises and problems. The format of the book is designed to convey the basic concepts in a mathematically rigorous manner, but with detailed derivations routinely relegated to the accompanying side notes or end of chapter "Discussions". The book is composed of four parts: Part I is a review of basic EandM (electricity and magnetism), and presents a concise review of topics covered in the subject. Part II addresses the origins of radiation in terms of time variations of charge and current densities within the source, and presents Jefimenko's field equations as derived from retarded potentials. Part III introduces special relativity and its deep connection to Maxwell's equations, together with an introduction to relativistic field theory, as well as the relativistic treatment of radiation from an arbitrarily accelerating charge. A highlight of this part is a chapter on the still partially unresolved problem of radiation reaction on an accelerating charge. Part IV treats the practical problems of electromagnetic radiation interacting with matter, with chapters on energy transport, scattering, diffraction and finally an illuminating, application-oriented treatment of fields in confined environments. Seller Inventory # LU-9780198726500
Quantity: Over 20 available