Control of Ultracold Photodissociation with Magnetic Fields

Photodissociation of a molecule produces a spatial distribution of photofragments determined by the molecular structure and the characteristics of the dissociating light. Performing this basic reaction at ultracold temperatures allows its quantum mechanical features to dominate. In this regime, weak...

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Veröffentlicht in:Physical review letters 2018-01, Vol.120 (3), p.033201-033201, Article 033201
Hauptverfasser: McDonald, M, Majewska, I, Lee, C-H, Kondov, S S, McGuyer, B H, Moszynski, R, Zelevinsky, T
Format: Artikel
Sprache:eng
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Zusammenfassung:Photodissociation of a molecule produces a spatial distribution of photofragments determined by the molecular structure and the characteristics of the dissociating light. Performing this basic reaction at ultracold temperatures allows its quantum mechanical features to dominate. In this regime, weak applied fields can be used to control the reaction. Here, we photodissociate ultracold diatomic strontium in magnetic fields below 10 G and observe striking changes in photofragment angular distributions. The observations are in excellent agreement with a multichannel quantum chemistry model that includes nonadiabatic effects and predicts strong mixing of partial waves in the photofragment energy continuum. The experiment is enabled by precise quantum-state control of the molecules.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.120.033201