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Optical MagnetometryFrom Cambridge University Press
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Featuring chapters written by leading experts in magnetometry, this book provides comprehensive coverage of the principles, technology and diverse applications of optical magnetometry, from testing fundamental laws of nature to detecting biomagnetic fields and medical diagnostics. Readers will find a wealth of technical information, from antirelaxation-coating techniques, microfabrication and magnetic shielding to geomagnetic-field measurements, space magnetometry, detection of biomagnetic fields, detection of NMR and MRI signals and rotation sensing. The book includes an original survey of the history of optical magnetometry and a chapter on the commercial use of these technologies. The book is supported by extensive online material, containing historical overviews, derivations, sideline discussion, additional plots and tables, available at www.cambridge.org/9781107010352. As well as introducing graduate students to this field, the book is also a useful reference for researchers in atomic physics.
- Sales Rank: #1088852 in Books
- Published on: 2013-04-15
- Original language: English
- Number of items: 1
- Dimensions: 9.72" h x .94" w x 6.85" l, 2.60 pounds
- Binding: Hardcover
- 432 pages
About the Author
Dmitry Budker is Professor of Physics at the University of California at Berkeley, Faculty Scientist in the Nuclear Science Division, LBNL, and Co-founder and Scientist of Rochester Scientific, LLC. His research interests are related to the study of violation of discrete symmetries and the development and applications of the optical-magnetometry techniques.
Derek Jackson Kimball is Associate Professor and Chair of the Department of Physics at California State University, East Bay. His research focuses on using techniques of experimental atomic physics and nonlinear optics for precision tests of the fundamental laws of physics.
Most helpful customer reviews
2 of 2 people found the following review helpful.
Almost Magnum Opus for Optical Magnetometry
By Andrew Ochadlick
This book presents the extensive and practical knowledge of many leaders in a wide range of topics that extend over almost every conceivable aspect of optical magnetometry. If this is your first encounter with optical magnetometry, the book’s core principles and its extensions into applications will hold your attention if you are persistent but the road between chapters is a bit bumpy. As an edited book that deals at its core with the coherency of spins in quantum states and spin dependent forces, it does fall short of maintaining coherency from chapter to chapter. So although its “Preface” describes the 20 chapters as pedagogical, those chapters are wanting as a teaching package because of a lack of coherency between chapters but excel at being sources of key concepts and examples of applications. Coherency is also lost in a mix of units as, for example, in the case of tesla per square root hertz in one chapter and gauss per square root hertz in another. Readers with experience in the field may find some surprising and gratifying revelations over the physical scale of topics from small scale microfabricated atomic magnetometers and optical magnetometry with nitrogen-vacancy centers in diamond to large scale planetary and interplanetary magnetic fields. A few chapters are far too short and could do better as perhaps books themselves and those chapters include Chapter 2, Quantum noise in atomic magnetometers, and Chapter 3, Quantum noise, squeezing, and entanglement in radiofrequency optical magnetometers, and Chapter 13, Remote detection magnetometry.
The book is divided into three parts and the disjointedness between the three parts, I Principles and Techniques, II Applications and III Broader Impact is unfortunate and worse than that between chapters. In particular, the title of Part III “Broader impact” seems to be a hurried poor description but the quality of the material is very good and should appeal to a wide audience. “Part III Broader impact” contains one of my favorite parts of the book, namely, Chapter 18 “Test of fundamental physics with optical magnetometers” and I suggest interested readers of that chapter check out the “Lorentz Violation Experiment” at [...] .
Even with its disjointed flow and an absence of coherency between chapters, I enthusiastically recommend this book to engineers and physicist. Some aspects of this book may also appeal to nanotechnologists.
andrewochadlick@comcast.net
2 of 3 people found the following review helpful.
Excellent
By Michael S Larsen
For anyone working in atomic magnetometry or studying the subject this is an excellent book. Pay close attention to chapter two.
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