Perspectives for coherent optical formation of strontium molecules in their electronic ground state
arXiv:0811.0015 · doi:10.1103/PhysRevA.78.063411
Abstract
Optical Feshbach resonances [Phys. Rev. Lett. 94, 193001 (2005)] and pump-dump photoassociation with short laser pulses [Phys. Rev. A 73, 033408 (2006)] have been proposed as means to coherently form stable ultracold alkali dimer molecules. In an optical Feshbach resonance, the intensity and possibly frequency of a cw laser are ramped up linearly followed by a sudden switch-off of the laser. This is applicable to tightly trapped atom pairs. In short-pulse photoassociation, the pump pulse forms a wave-packet in an electronically excited state. The ensuing dynamics carry the wave-packet to shorter internuclear distances where, after half a vibrational period, it can be deexcited to the electronic ground state by the dump pulse. Short-pulse photoassociation is suited for both shallow and tight traps. The applicability of these two means to produce ultracold molecules is investigated here for Sr. Dipole-allowed transitions proceeding via the excited state as well as transitions near the intercombination line are studied.
References in corpus (15)
- Sr lattice clock at 1x10^{-16} fractional uncertainty by remote optical evaluation with a Ca clock
- Quantum Gas of Deeply Bound Ground State Molecules
- Quantum computing with alkaline earth atoms
- Precision Test of Mass Ratio Variations with Lattice-Confined Ultracold Molecules
- Long-lived Bloch oscillations with bosonic Sr atoms and application to gravity measurement at micrometer scale
- Stabilization of Ultracold Molecules Using Optimal Control Theory
- Narrow Line Photoassociation in an Optical Lattice
- Giant formation rates of ultracold molecules via Feshbach Optimized Photoassociation
- Making ultracold molecules in a two color pump-dump photoassociation scheme using chirped pulses
- Precise Control of Molecular Dynamics with a Femtosecond Frequency Comb - A Weak Field Route to Strong Field Coherent Control
- Coherent Control of Ultracold Collisions with Chirped Light: Direction Matters
- Enhancement of the formation of ultracold Rb molecules due to resonant coupling
- Creating Ground State Molecules with Optical Feshbach Resonances in Tight Traps
- Engineering an all-optical route to ultracold molecules in their vibronic ground state
- Probing Ultracold Collisional Dynamics with Frequency-Chirped Pulses