1997
DOI: 10.1103/physrevlett.78.4027
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Threshold Law For Positron Impact Ionization of Atoms

Abstract: We demonstrate that recent experiments for positron impact ionization of He and H 2 can be interpreted by extending Wannier theory to higher energies. Anharmonicities in the expansion of the three-particle potential around the Wannier configuration give rise to corrections in the threshold behavior of the breakup cross section. These corrections are taken into account perturbatively by employing the hidden crossing theory. The resulting threshold law is s͑E͒~E 2.640 exp͓20.73 p E ͔. The actual energy range for… Show more

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Cited by 42 publications
(25 citation statements)
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“…For the positronimpact ionization the applicability domain is even less [12] [13]. As argued by Ihra et al [18], an agreement with experimental data could be substantially improved if the interaction of different modes in the deviation from SC is taken into account. Possibly some procedure to assess for the mode interaction could be developed also for the multifragment system;…”
Section: F Fragmentation In Two Pairs Of Identical Particles With Opmentioning
confidence: 99%
“…For the positronimpact ionization the applicability domain is even less [12] [13]. As argued by Ihra et al [18], an agreement with experimental data could be substantially improved if the interaction of different modes in the deviation from SC is taken into account. Possibly some procedure to assess for the mode interaction could be developed also for the multifragment system;…”
Section: F Fragmentation In Two Pairs Of Identical Particles With Opmentioning
confidence: 99%
“…As a result, the cross section becomes path dependent. The correction term can be included in a consistent way by following the prescription for the paths given in [6]; we refer to these calculations as HHCM +cor .The HHCM has previously been applied with success to three-body collisions, including electron excitation [1] and impact ionization [1,[7][8][9][10][11][12]. Earlier HHCM calculations for Ps(1s) formation in e + − H collisions included an asymptotic approximation to the correction term (for the P-and D-waves) and provided an explanation for the small S-wave Ps(1s)-formation cross section in terms of the Stückelberg phase [2].…”
mentioning
confidence: 99%
“…This is particularly reflected by the decisively different threshold laws for total breakup (cf. [3][4][5] and references therein).(ii) The indistinguishability of the two electrons introduces exchange effects in the case of ͑e 2 e 2 H 1 2 ͒, i.e., the cross sections are statistical mixtures of triplet and singlet scattering cross sections. While this effect is absent in the case of ͑e 2 e 1 H 1 2 ͒, an additional channel opens, namely, that of positronium formation.…”
mentioning
confidence: 99%
“…This is particularly reflected by the decisively different threshold laws for total breakup (cf. [3][4][5] and references therein).…”
mentioning
confidence: 99%