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      Two-body dissociation of formic acid following double ionization by ultrafast laser pulses

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          Recoil-ion and electron momentum spectroscopy: reaction-microscopes

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            Cold Target Recoil Ion Momentum Spectroscopy: a ‘momentum microscope’ to view atomic collision dynamics

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              Tabletop imaging of structural evolutions in chemical reactions demonstrated for the acetylene cation.

              The introduction of femto-chemistry has made it a primary goal to follow the nuclear and electronic evolution of a molecule in time and space as it undergoes a chemical reaction. Using Coulomb Explosion Imaging, we have shot the first high-resolution molecular movie of a to and fro isomerization process in the acetylene cation. So far, this kind of phenomenon could only be observed using vacuum ultraviolet light from a free-electron laser. Here we show that 266 nm ultrashort laser pulses are capable of initiating rich dynamics through multiphoton ionization. With our generally applicable tabletop approach that can be used for other small organic molecules, we have investigated two basic chemical reactions simultaneously: proton migration and C=C bond breaking, triggered by multiphoton ionization. The experimental results are in excellent agreement with the timescales and relaxation pathways predicted by new and quantitative ab initio trajectory simulations.
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                Author and article information

                Contributors
                Journal
                PLRAAN
                Physical Review A
                Phys. Rev. A
                American Physical Society (APS)
                2469-9926
                2469-9934
                May 2022
                May 12 2022
                : 105
                : 5
                Article
                10.1103/PhysRevA.105.053112
                94f15b33-0944-4ab2-b6f3-cb0721532ca7
                © 2022

                https://link.aps.org/licenses/aps-default-license

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