Transient changes in molecular geometries and how to model them [electronic resource] : simulating chemical reactions of metal complexes in solution to explore dynamics, solvation, coherence, and the link to experiment / Asmus Ougaard Dohn.
2015
QD501 .D65 2015eb
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Title
Transient changes in molecular geometries and how to model them [electronic resource] : simulating chemical reactions of metal complexes in solution to explore dynamics, solvation, coherence, and the link to experiment / Asmus Ougaard Dohn.
Author
ISBN
9783319187471 electronic book
3319187473 electronic book
9783319187464
3319187473 electronic book
9783319187464
Published
Cham : Springer, [2015]
Copyright
©2015
Language
English
Description
1 online resource (xxxviii, 146 pages) : illustrations.
Call Number
QD501 .D65 2015eb
Dewey Decimal Classification
541/.394
Summary
This thesis examines various aspects of excess excitation energy dissipation via dynamic changes in molecular structure, vibrational modes and solvation. The computational work is carefully described and the results are compared to experimental data obtained using femtosecond spectroscopy and x-ray scattering. The level of agreement between theory and experiment is impressive and provides both a convincing validation of the method and significant new insights into the chemical dynamics and molecular determinants of the experimental data. Hence, the method presented in the thesis has the potential to become a very important contribution to the rapidly growing field of femtosecond x-ray science, a trend reflected in the several free-electron x-ray lasers (XFELs) currently being built around the world. Light-induced chemical processes are accompanied by molecular motion of electrons and nuclei on the femtosecond time scale. Uncovering these dynamics is central to our understanding of the chemical reaction on a fundamental level. Asmus O. Dohn has implemented a highly efficient QM/MM Direct Dynamics method for predicting the solvation dynamics of transition metal complexes in solution.
Note
"Doctoral thesis accepted by the Technical University of Denmark, Denmark."
Bibliography, etc. Note
Includes bibliographical references.
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Source of Description
Online resource; title from PDF title page (SpringerLink, viewed June 12, 2015).
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Springer theses.
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Table of Contents
Introduction and Background
Treating Relativistic Effects in Transition Metal Complexes
X-Ray Scattering from Purely Classical MD
Direct Dynamic Simulations of Ir2(Dimen)4(2+).-Directs Dynamics Simulations of the Ru=Co Complex
Summary
Appendix.
Treating Relativistic Effects in Transition Metal Complexes
X-Ray Scattering from Purely Classical MD
Direct Dynamic Simulations of Ir2(Dimen)4(2+).-Directs Dynamics Simulations of the Ru=Co Complex
Summary
Appendix.