Binding Energies of 6Li p-wave Feshbach Molecules
arXiv:0802.3262 · doi:10.1103/PhysRevA.77.053616
Abstract
We present measurements of the binding energies of Li p-wave Feshbach molecules formed in combinations of the (F = 1/2, m_F = +1/2), (1), and (F = 1/2, m_F = -1/2), (2), states. The binding energies scale linearly with magnetic field detuning for all three resonances. The relative molecular magnetic moments are found to be K/G, K/G and K/G for the (1)-(1), (1)-(2) and (2)-(2) resonances, respectively, in good agreement with theoretical predictions. Closed channel amplitudes and the size of the p-wave molecules are obtained theoretically from full closed-coupled calculations.
Replaced with published version
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Cited by in corpus (9)
- Bragg spectroscopy of a strongly interacting Fermi gas
- Collisional Properties of p-Wave Feshbach Molecules
- Stability of the fermionic gases close to a p-wave Feshbach resonance
- Splitting and oscillation of Majorana zero modes in the p-wave BCS-BEC evolution with plural vortices
- Induced p-wave superfluidity in two dimensions: Brane world in cold atoms and nonrelativistic defect CFTs
- Confinement-induced p-wave resonances from s-wave interactions
- Structure and consequences of vortex-core states in p-wave superfluids
- High temperature thermodynamics of strongly interacting s-wave and p-wave Fermi gases in a harmonic trap
- Many-body dynamics of p-wave Feshbach molecule production: a mean-field approach