Magnetic field modification of ultracold molecule-molecule collisions
Autor: | Timur V. Tscherbul, Vincenzo Aquilanti, Yu. V. Suleimanov, Roman V. Krems |
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Rok vydání: | 2008 |
Předmět: |
Elastic scattering
Physics Chemical Physics (physics.chem-ph) Zeeman effect 010304 chemical physics Atomic Physics (physics.atom-ph) Relaxation (NMR) General Physics and Astronomy FOS: Physical sciences Scattering length Inelastic scattering 01 natural sciences Physics - Atomic Physics Magnetic field Spin magnetic moment symbols.namesake Physics - Chemical Physics 0103 physical sciences symbols Atomic physics 010306 general physics Ground state |
DOI: | 10.48550/arxiv.0808.3592 |
Popis: | We present an accurate quantum mechanical study of molecule-molecule collisions in the presence of a magnetic field. The work focusses on the analysis of elastic scattering and spin relaxation in collisions of O2(3Sigma_g) molecules at cold (~0.1 K) and ultracold (~10^{-6} K) temperatures. Our calculations show that magnetic spin relaxation in molecule-molecule collisions is extremely efficient except at magnetic fields below 1 mT. The rate constant for spin relaxation at T=0.1 K and a magnetic field of 0.1 T is found to be as large as 6.1 x 10^{-11} cm3/s. The magnetic field dependence of elastic and inelastic scattering cross sections at ultracold temperatures is dominated by a manifold of Feshbach resonances with the density of ~100 resonances per Tesla for collisions of molecules in the absolute ground state. This suggests that the scattering length of ultracold molecules in the absolute ground state can be effectively tuned in a very wide range of magnetic fields. Our calculations demonstrate that the number and properties of the magnetic Feshbach resonances are dramatically different for molecules in the absolute ground and excited spin states. The density of Feshbach resonances for molecule-molecule scattering in the low-field-seeking Zeeman state is reduced by a factor of 10. Comment: 29 pages, 8 figures, accepted for publication in New J. Phys. (special issue on ultracold molecules) |
Databáze: | OpenAIRE |
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