Vibrational cooling of D2+in an ion storage ring as revealed by dissociative recombination measurements
Mats Larsson, M. Carlson, H. Danared, Lars Broström, S. Mannervik, Göran Sundström
Abstract
Mats Larsson, M. Carlson, H. Danared, Lars Broström, S. Mannervik, Göran Sundström
Abstract
It is demonstrated that a substantial degree of vibrational cooling of an infrared inactive molecule can be achieved by means of storage in an ion cooler ring. The cross section for dissociative recombination of D 2 + has been measured in the storage ring CRYRING using 6 MeV amu -1 ions and variable storage times prior to data taking. By using a simple model for describing the recombination process, it is inferred that 68% of the D 2 + ions remaining in the ring after 22.5 s populate nu =0. It is proposed that the removal of vibrational excitation contained in the ions injected into the ring is due to collisions in the rest gas. The rate coefficient measured for 22.5 s storage time, alpha (T=300 K)=2.3*10 -8 cm 3 s -1 is in very good agreement with theoretical predictions.
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It is demonstrated that a substantial degree of vibrational cooling of an infrared inactive molecule can be achieved by means of storage in an ion cooler ring. The cross section for dissociative recombination of D 2 + has been measured in the storage ring CRYRING using 6 MeV amu -1 ions and variable storage times prior to data taking. By using a simple model for describing the recombination process, it is inferred that 68% of the D 2 + ions remaining in the ring after 22.5 s populate nu =0. It is proposed that the removal of vibrational excitation contained in the ions injected into the ring is due to collisions in the rest gas. The rate coefficient measured for 22.5 s storage time, alpha (T=300 K)=2.3*10 -8 cm 3 s -1 is in very good agreement with theoretical predictions.
Key concepts: Storage ring, Dissociative recombination, Ion, Atomic physics, Recombination, Ring (chemistry), Excitation, Molecule