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Resonant Annihilation and Positron Bound States in Benzene
S Ghosh1, J R Danielson1, C M Surko1
1Physics Department, University of California San Diego, La Jolla, California 92093, USA.
Abstract:
Positrons attach to molecules in vibrationally resonant two-body collisions that result in greatly enhanced annihilation rates. Measurements of annihilation as a function of positron energy are presented for benzene using a cryogenic, trap-based beam. They establish a positron binding energy of 132±3 meV to test state-of-the-art theoretical calculations, and they exhibit many unexpected resonances, likely due to combination and overtone vibrational modes. The relationship of these results to the unique π-bonded structure of benzene is discussed.
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