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Water-molecule dissociation by proton and hydrogen impact

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dc.contributor.author Luna, H
dc.contributor.author De Barros, A.L.F
dc.contributor.author Wyer, J.A
dc.contributor.author Scully, S.W.J
dc.contributor.author Laconte, J
dc.contributor.author Garcia, P.M.Y
dc.contributor.author Sigaud, G.M
dc.contributor.author Santos, A.C.F
dc.contributor.author Senthil, V
dc.contributor.author Shah, M.B
dc.contributor.author Latimer, C.J
dc.contributor.author Montenegro, E.C
dc.date.accessioned 2014-02-02T06:34:20Z
dc.date.accessioned 2022-07-11T09:44:19Z
dc.date.available 2014-02-02T06:34:20Z
dc.date.available 2022-07-11T09:44:19Z
dc.date.issued 2007-04
dc.identifier.issn 10502947
dc.identifier.uri http://repo.lib.jfn.ac.lk/ujrr/handle/123456789/208
dc.description.abstract Time-of-flight-based mass analysis of charged water fragments have been used to measure the dissociative and the nondissociative reaction pathways of water formed during collisions with 15 to 100 keV and 500 to 3500 keV H+ projectiles and with 8 to 100 keV H0 projectiles. The fragmentation pathways resulting from the ionization and the electron capture collisions with the incident H+ and H0 projectiles, as well as collisions involving projectile electron loss by the incident H0 projectiles, were separately recorded by detecting the target product ions in coincidence with either the ejected target electrons or the charge-analyzed projectiles. The fragmentation profile shows that at high collision energies the ionization of water arises mainly through outer shell processes. At lower energies valence electron capture and ionization dominate and transfer ionization leads to substantially different fragmentation patterns. H0 and H+ projectiles are found to be equally efficient at ionizing the water molecule. These results are of particular interest to workers in astrophysics and those involved in cancer therapy with heavy particle ion beams. en_US
dc.language.iso en en_US
dc.publisher The American Physical Society en_US
dc.title Water-molecule dissociation by proton and hydrogen impact en_US
dc.type Article en_US


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