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Advances in Chemical Physics, Volume 117


Advances in Chemical Physics, Volume 117


Advances in Chemical Physics, Band 252 1. Aufl.

von: Ilya Prigogine, Stuart A. Rice

321,99 €

Verlag: Wiley
Format: PDF
Veröffentl.: 09.09.2009
ISBN/EAN: 9780470142295
Sprache: englisch
Anzahl Seiten: 840

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Beschreibungen

Providing the chemical physics field with a forum for critical, authoritative evaluations in every area of the discipline, the latest volume of Advances in Chemical Physics continues to provide significant, up-to-date chapters written by internationally recognized researchers. <p>This volume is essentially devoted to helping the reader obtain general information about a wide variety of topics in chemical physics. Advances in Chemical Physics, Volume 117 includes chapters addressing laser photoelectron spectroscopy, nonadiabatic transitions due to curve crossings, multidimensional raman spectroscopy, birefringence and dielectric relaxation in strong electric fields, and crossover formulae for Kramers Theory of thermally activated escape rates.</p>
Laser Photoelectron Spectroscopy: Spectroscopy and Dynamics of Excited States in Small and Medium-Sized Molecules (C. De Lange).<br /> <br /> Nonadiabatic Transitions Due to Curve Crossings: Complete Solutions of the Landau-Zener-Stueckelberg Problems and Their Applications (C. Zhu, et al.).<br /> <br /> Multidimensional Raman Spectroscopy (J. Fourkas).<br /> <br /> Birefringence and Dielectric Relaxation in Strong Electric Fields (J. Déjardin, et al.).<br /> <br /> Crossover Formulas in the Kramers Theory of Thermally Activated Escape Rates -- Application to Spin Systems (W. Coffey, et al.).<br /> <br /> Author Index.<br /> <br /> Subject Index.
<p><b>ILYA PRIGOGINE</b> is Director of the Instituts Internationaux de Physique et de Chimie, E. Solvay, Brussels, Belgium. Dr. Prigogine is also the Ashbel Smith Professor of Physics at The University of Texas at Austin, where he is also Director of the Ilya Prigogine Center for Studies in Statistical Mechanics and Complex Systems. In 1977 he was awarded the Nobel Prize in Chemistry.</p> <p><b>STUART A. RICE</b> received his master's and doctorate from Harvard University and was a Junior Fellow at Harvard for two years before joining the faculty of The University of Chicago in 1957 where he remains a well-known theoretical chemist who also does experimental research and is currently the Frank P. Hixon Distinguished Service Professor Emeritus at The University of Chicago. Professor Rice has served the university in a wide variety of capacities during his forty-eight year tenure. He served as the director of the James Franck Institute (the university's center for physical chemistry and condensed matter physics) from 1961 to 1967, was Chairman of the Department of Chemistry from 1971 to 1976 and was Dean of the Physical Sciences Division from 1981 to 1995. In 1999 he received the National Medal of Science.<br />In addition to his work at the University, he is currently on the Board of Governors at Argonne National Laboratory, managed by and affiliated with The University of Chicago, as well as Tel Aviv University. He has served as editor for <i>Chemical Physics Letters</i>, in addition to the series on <i>Advances in Chemical Physics</i>. He currently maintains a full research lab but has retired from teaching classes.</p>
Providing the chemical physics field with a forum for critical, authoritative evaluations in every area of the discipline, the latest volume of Advances in Chemical Physics continues to provide significant, up-to-date chapters written by internationally recognized researchers.<br /> <br /> This volume is essentially devoted to helping the reader obtain general information about a wide variety of topics in chemical physics. Advances in Chemical Physics, Volume 117 includes chapters addressing laser photoelectron spectroscopy, nonadiabatic transitions due to curve crossings, multidimensional raman spectroscopy, birefringence and dielectric relaxation in strong electric fields, and crossover formulae for Kramers Theory of thermally activated escape rates.

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