45 research outputs found
Quantum energy flow in atomic ions moving in magnetic fields
Using a combination of semiclassical and recently developed wave packet
propagation techniques we find the quantum self-ionization process of highly
excited ions moving in magnetic fields which has its origin in the energy
transfer from the center of mass to the electronic motion. It obeys a time
scale by orders of magnitude larger than the corresponding classical process.
Importantly a quantum coherence phenomenon leading to the intermittent
behaviour of the ionization signal is found and analyzed. Universal properties
of the ionization process are established.Comment: 4 pages, 4 figure
Quantum dynamics of resonant molecule formation in waveguides
We explore the quantum dynamics of heteronuclear atomic collisions in
waveguides and demonstrate the existence of a novel mechanism for the resonant
formation of polar molecules. The molecular formation probabilities can be
tuned by changing the trap frequencies characterizing the transverse modes of
the atomic species. The origin of this effect is the confinement-induced mixing
of the relative and center of mass motions in the atomic collision process
leading to a coupling of the diatomic continuum to center of mass excited
molecular states in closed transverse channels.Comment: 11 pages, 5 figure