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Resolving Strong Field Dynamics in Cation States of CO_2 via Optimised Molecular Alignment (Hardcover, 2014): Malte Oppermann Resolving Strong Field Dynamics in Cation States of CO_2 via Optimised Molecular Alignment (Hardcover, 2014)
Malte Oppermann
R3,732 R3,293 Discovery Miles 32 930 Save R439 (12%) Ships in 12 - 17 working days

This thesis presents an experimental study of the ultrafast molecular dynamics of CO_2 DEGREES+ that are induced by a strong, near-infrared, femtosecond laser pulse. In particular, typical strong field phenomena such as tunneling ionisation, nonsequential double ionisation and photo-induced dissociation are investigated and controlled by employing an experimental technique called impulsive molecular alignment. Here, a first laser pulse fixes the molecule in space, such that the molecular dynamics can be studied as a function of the molecular geometry with a second laser pulse. The experiments are placed within the context of the study and control of ultrafast molecular dynamics, where sub-femtosecond (10 DEGREES-15 seconds) resolution in ever larger molecular systems represents the current frontier of research. The thesis presents the required background in strong field and molecular physics, femtosecond laser architecture and experimental techniques in a clear and accessible language that does not require any previous knowledge in

Resolving Strong Field Dynamics in Cation States of CO_2 via Optimised Molecular Alignment (Paperback, Softcover reprint of the... Resolving Strong Field Dynamics in Cation States of CO_2 via Optimised Molecular Alignment (Paperback, Softcover reprint of the original 1st ed. 2014)
Malte Oppermann
R2,792 Discovery Miles 27 920 Ships in 10 - 15 working days

This thesis presents an experimental study of the ultrafast molecular dynamics of CO_2^+ that are induced by a strong, near-infrared, femtosecond laser pulse. In particular, typical strong field phenomena such as tunneling ionisation, nonsequential double ionisation and photo-induced dissociation are investigated and controlled by employing an experimental technique called impulsive molecular alignment. Here, a first laser pulse fixes the molecule in space, such that the molecular dynamics can be studied as a function of the molecular geometry with a second laser pulse. The experiments are placed within the context of the study and control of ultrafast molecular dynamics, where sub-femtosecond (10^-15 seconds) resolution in ever larger molecular systems represents the current frontier of research. The thesis presents the required background in strong field and molecular physics, femtosecond laser architecture and experimental techniques in a clear and accessible language that does not require any previous knowledge in these fields.

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