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Modelling the Dissociation Dynamics and Threshold Photoelectron Spectra of Small Halogenated Molecules

by Jonelle Harvey
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Current price ₹7,028.00
Original price ₹10,039.00
Original price ₹10,039.00
Original price ₹10,039.00
(-30%)
₹7,028.00
Current price ₹7,028.00

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Book cover type: Paperback
  • ISBN13: 9783319379913
  • Binding: Paperback
  • Subject: N/A
  • Publisher: Springer
  • Publisher Imprint: Springer
  • Publication Date:
  • Pages: 174
  • Original Price: EUR 99.99
  • Language: English
  • Edition: Softcover Repri
  • Item Weight: 278 grams
  • BISAC Subject(s): Chemistry / Physical & Theoretical, Physics / Atomic & Molecular, and Physics / Quantum Theory

From the Back Cover

Jonelle Harvey's thesis outlines two related experimental techniques which are utilised to investigate small halogenated molecules: threshold photoelectron spectroscopy and threshold photoelectron photoion coincidence techniques. All the experiments were conducted at the vacuum ultraviolet beamline of the Swiss Light Source, which is a synchrotron photon source offering easy tunability. In this thesis, three studies are presented which combine experimental and computational ab initio approaches. The first study involves the
fast dissociation of halogenated methanes in order to construct a self-consistent thermochemical network. The second study investigates the fragmentations of fluoroethenes from timebombs, which break apart very slowly but explosively, to fast dissociators. The third study uncovers how vital conical interactions underpin both the results of photoelectron spectra and dissociation patterns.The details included in this work are useful for researchers in the same field as well as those readers wishing to obtain a solid introduction into the types of systems encountered in threshold photoelectron photoion coincidence spectroscopy.

Jonelle Harvey completed her PhD in 2013. This was a joint project between the University of Birmingham and the Paul Scherrer Institut, Switzerland. She is now a research fellow of the University of Birmingham and is engaged in another successful collaboration with the Paul Scherrer Institute.

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