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      Handshake electron transfer from hydrogen Rydberg atoms incident at a series of metallic thin films

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          Abstract

          Thin metallic films have a 1D quantum well along the surface normal direction, which yields particle-in-a-box style electronic quantum states. However the quantum well is not infinitely deep and the wavefunctions of these states penetrate outside the surface where the electron is bound by its own image-charge attraction. Therefore a series of discrete, vacant states reach out from the thin film into the vacuum increasing the probability of electron transfer from an external atom or molecule to the thin film, especially for the resonant case where the quantum well energy matches that of the Rydberg atom. We show that `handshake' electron transfer from a highly excited Rydberg atom to these thin-film states is experimentally measurable. Thicker films, have a wider 1D box, changing the energetic distribution and image-state contribution to the thin film wavefunctions, resulting in more resonances. Calculations successfully predict the number of resonances and the nature of the thin-film wavefunctions for a given film thickness.

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          A novel discrete variable representation for quantum mechanical reactive scattering via the S‐matrix Kohn method

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            Photoemission studies of quantum well states in thin films

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              Quantum well structures in thin metal films: simple model physics in reality?

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                Author and article information

                Journal
                2016-04-24
                Article
                10.1063/1.4953554
                1604.07068
                bfe9769c-1b0b-4d1e-a3f2-5b855e115933

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                7 pages 6 figures
                physics.chem-ph physics.atom-ph

                Physical chemistry,Atomic & Molecular physics
                Physical chemistry, Atomic & Molecular physics

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