Molecules in Electromagnetic Fields

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Guide to molecules in electromagnetic fields

A01=Roman V. Krems
AC Stark effect
Age Group_Uncategorized
Age Group_Uncategorized
applications of ultracold molecules
atomic physics
Author_Roman V. Krems
automatic-update
Category1=Non-Fiction
Category=PNRH
concepts developed in ultracold physics
control of molecular interactions
cooling and trapping atoms
cooling and trapping molecules
COP=United States
DC Stark effect
Delivery_Delivery within 10-20 working days
effects of electric and magnetic fields on molecular structure
electric traps
eq_bestseller
eq_isMigrated=2
eq_nobargain
eq_non-fiction
eq_science
Floquet theory
from ultracold physics to controlled chemistry

guiding molecular beams
ideas for working with various aspects of molecular interactions
Language_English
laser control of molecular rotations
magnetic traps
molecular energy levels
molecules in quantized fields
PA=Available
Price_€100 and above
PS=Active
quantized fields
resource for understanding molecules in electromagnetic fields
scattering theory
softlaunch
Stark effect
static electric fields
static magnetic fields
theories of ultracold molecules
thermal isolation of molecules
ultracold chemistry
ultracold molecules
ultracold physics
Zeeman effect

Product details

  • ISBN 9781118173619
  • Weight: 771g
  • Dimensions: 158 x 231mm
  • Publication Date: 31 Jul 2018
  • Publisher: John Wiley & Sons Inc
  • Publication City/Country: US
  • Product Form: Hardback
  • Language: English
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A tutorial for calculating the response of molecules to electric and magnetic fields with examples from research in ultracold physics, controlled chemistry, and molecular collisions in fields

Molecules in Electromagnetic Fields is intended to serve as a tutorial for students beginning research, theoretical or experimental, in an area related to molecular physics. The author—a noted expert in the field—offers a systematic discussion of the effects of static and dynamic electric and magnetic fields on the rotational, fine, and hyperfine structure of molecules. The book illustrates how the concepts developed in ultracold physics research have led to what may be the beginning of controlled chemistry in the fully quantum regime.  Offering a glimpse of the current state of the art research, this book suggests future research avenues for ultracold chemistry. 

The text describes theories needed to understand recent exciting developments in the research on trapping molecules, guiding molecular beams, laser control of molecular rotations, and external field control of microscopic intermolecular interactions. In addition, the author presents the description of scattering theory for molecules in electromagnetic fields and offers practical advice for students working on various aspects of molecular interactions. 

This important text:

  • Offers information on theeffects of electromagnetic fields on the structure of molecular energy levels
  • Includes thorough descriptions of the most useful theories for ultracold molecule researchers
  • Presents a wealth of illustrative examples from recent experimental and theoretical work
  • Contains helpful exercises that help to reinforce concepts presented throughout text

Written for senior undergraduate and graduate students, professors, researchers, physicists, physical chemists, and chemical physicists, Molecules in Electromagnetic Fields is an interdisciplinary text describing theories and examples from the core of contemporary molecular physics. 

ROMAN V. KREMS is a professor of theoretical chemistry at the University of British Columbia in Vancouver, Canada. His current research focuses on understanding the effects of electromagnetic fields on dynamics of few- and many-body molecular systems, the interaction properties of molecules at extremely low temperatures, and applications of machine learning to molecular physics.

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