Chemical Theory beyond the Born-Oppenheimer Paradigm : (Record no. 2373)

MARC details
000 -LEADER
fixed length control field 05787nam a2200349 a 4500
001 - CONTROL NUMBER
control field 00006313
003 - CONTROL NUMBER IDENTIFIER
control field WSP
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20230529160214.0
006 - FIXED-LENGTH DATA ELEMENTS--ADDITIONAL MATERIAL CHARACTERISTICS
fixed length control field m d
007 - PHYSICAL DESCRIPTION FIXED FIELD--GENERAL INFORMATION
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008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 091123s2015 si a sb 001 0 eng d
010 ## - LIBRARY OF CONGRESS CONTROL NUMBER
LC control number 2014037595
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9789814619653
Qualifying information electronic bk.
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
Canceled/invalid ISBN 9789814619660
040 ## - CATALOGING SOURCE
Original cataloging agency WSPC
Language of cataloging eng
Transcribing agency WSPC
082 04 - DEWEY DECIMAL CLASSIFICATION NUMBER
Classification number 541.39
100 ## - MAIN ENTRY--PERSONAL NAME
Personal name Takatsuka, Kazuo ... [et al.]
245 00 - TITLE STATEMENT
Title Chemical Theory beyond the Born-Oppenheimer Paradigm :
Remainder of title Nonadiabatic Electronic and Nuclear Dynamics in Chemical Reactions /
260 ## - PUBLICATION, DISTRIBUTION, ETC. (IMPRINT)
Place of publication, distribution, etc. Singapore ;
Name of publisher, distributor, etc. World Scientific Pub. Co.,
Date of publication, distribution, etc. ©2015.
300 ## - PHYSICAL DESCRIPTION
Extent 448 p. :
504 ## - BIBLIOGRAPHY, ETC. NOTE
Bibliography, etc Includes bibliographical references (p. 403-421) and index.
505 0# - FORMATTED CONTENTS NOTE
Formatted contents note 1. The aim of this book: where are we? 1.1. Potential energy surfaces and nonadiabatic transitions. 1.2. Necessity of nonadiabatic dynamical electron theory. 1.3. Structure of this book -- 2. Basic framework of theoretical chemistry. 2.1. Born-Huang expansion. 2.2. Born-Oppenheimer approximation. 2.3. Validity of the BO approximation. 2.4. Generalization of the adiabatic electronic states -- 3. Nuclear dynamics on adiabatic electronic potential energy surfaces. 3.1. Classical nuclear dynamics: Ab initio molecular dynamics. 3.2. Nuclear quantum dynamics on an adiabatic potential surface. 3.3. Probing the dynamics with time-resolved photoelectron spectroscopy -- 4. Breakdown of the Born-Oppenheimer approximation: classic theories of nonadiabatic transitions and ideas behind. 4.1. Theories for one-dimensional curve crossing problem. 4.2. Mixed quantum-classical formulation of electron-nucleus coupled nonadiabatic dynamics. 4.3. Surface hopping scheme and beyond. 4.4. Coherence and decoherence before and after nonadiabatic interaction. 4.5. Some specific methods recently proposed for nonadiabatic dynamics. 4.6. Hybrid methods for nonadiabatic dynamics in large molecular systems -- 5. Direct observation of the wavepacket bifurcation due to nonadiabatic transitions. 5.1. How does the Born-Oppenheimer approximation break down? 5.2. Nuclear wavepacket bifurcation as observed with time-resolved photoelectron spectroscopy. 5.3. Control of nonadiabatic chemical dynamics. 5.4. Conical intersection and wavepacket dynamics there. 5.5. High-harmonic spectroscopy to monitor nonadiabatic transition. 5.6. Electron and nucleus dynamics tracked with pulse train in time-resolved photoelectron spectroscopy. 5.7. Photoemission arising from electron transfer within a molecule -- 6. Nonadiabatic electron wavepacket dynamics in path-branching representation. 6.1. Path-branching representation for electron wavepacket propagation. 6.2. Methods of averaging and branching. 6.3. Numerical examples of branching paths and transition probability. 6.4. Highly degenerate coupled electronic states. 6.5. Electronic phase interference between different branching paths: dynamics around conical intersections. 6.6. Quantum effects manifesting in the nuclear branching paths. 6.7. Quantization of non-Born-Oppenheimer paths -- 7. Dynamical electron theory for chemical reactions. 7.1. Electron flux in chemical reactions. 7.2. Real-time dynamics of electron migration in a model water cluster anion system. 7.3. Single and relayed proton transfer in peptide. 7.4. Double proton transfer in formic acid dimer. 7.5. Excited-state proton-electron simultaneous transfer. 7.6. Chemical dynamics for systems where notion of potential energy surfaces loses sense -- 8. Molecular electron dynamics in laser fields. 8.1. Experimental progress and theoretical issues. 8.2. Dressed electronic states and nonadiabatic nuclear dynamics on them driven by laser fields. 8.3. Generalization of path-branching representation for arbitrary optical and nonadiabatic transitions. 8.4. Applications: electron jump in laser fields. 8.5. Dynamics of photoionization.
520 ## - SUMMARY, ETC.
Summary, etc. This unique volume offers a clear perspective of the relevant methodology relating to the chemical theory of the next generation beyond the Born-Oppenheimer paradigm. It bridges the gap between cutting-edge technology of attosecond laser science and the theory of chemical reactivity. The essence of this book lies in the method of nonadiabatic electron wavepacket dynamic, which will set a new foundation for theoretical chemistry. In light of the great progress of molecular electronic structure theory (quantum chemistry), the authors show a new direction towards nonadiabatic electron dynamics, in which quantum wavepackets have been theoretically and experimentally revealed to bifurcate into pieces due to the strong kinematic interactions between electrons and nuclei. The applications range from nonadiabatic chemical reactions in photochemical dynamics to chemistry in densely quasi-degenerated electronic states that largely fluctuate through their mutual nonadiabatic couplings. The latter is termed as "chemistry without the potential energy surfaces" and thereby virtually no theoretical approach has been made yet. Restarting from such a novel foundation of theoretical chemistry, the authors cast new light even on the traditional chemical notions such as the Pauling resonance theory, proton transfer, singlet biradical reactions, and so on.
533 ## - REPRODUCTION NOTE
Type of reproduction Electronic reproduction.
Place of reproduction Singapore :
Agency responsible for reproduction World Scientific Publishing Co.,
Date of reproduction 2015.
Note about reproduction System requirements: Adobe Acrobat Reader.
-- Mode of access: World Wide Web.
-- Available to subscribing institutions.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Born-Oppenheimer approximation.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Chemical reactions.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Charge exchange.
655 #0 - INDEX TERM--GENRE/FORM
Genre/form data or focus term Electronic books.
776 1# - ADDITIONAL PHYSICAL FORM ENTRY
International Standard Book Number 9789814619646
856 40 - ELECTRONIC LOCATION AND ACCESS
Uniform Resource Identifier <a href="http://www.worldscientific.com/worldscibooks/10.1142/9291#t=toc">http://www.worldscientific.com/worldscibooks/10.1142/9291#t=toc</a>
Link text ebook
942 ## - ADDED ENTRY ELEMENTS (KOHA)
Source of classification or shelving scheme Dewey Decimal Classification
Koha item type E-Books
Holdings
Withdrawn status Lost status Source of classification or shelving scheme Damaged status Not for loan Home library Current library Date acquired Total Checkouts Full call number Barcode Date last seen Price effective from Koha item type
    Dewey Decimal Classification     Indian Institute of Technology Tirupati Indian Institute of Technology Tirupati 06/02/2018   541.39 EB00289 06/02/2018 06/02/2018 E-Books