Coupling of magnetic and optomechanical structuring in cold atoms
- URL: http://arxiv.org/abs/2108.12064v3
- Date: Thu, 21 Apr 2022 10:55:21 GMT
- Title: Coupling of magnetic and optomechanical structuring in cold atoms
- Authors: T. Ackemann, G. Labeyrie, A. Costa Boquete, G. Baio, J. G. M. Walker,
R. Kaiser, G.-L. Oppo, G. R. M. Robb
- Abstract summary: Self-organized phases in cold atoms can be induced by coupling to internal or external degrees of the atoms.
We present a model for the coupling between magnetic and optomechanical structuring in a $J=1/2 to J'=3/2$ system.
- Score: 0.0
- License: http://creativecommons.org/licenses/by-nc-nd/4.0/
- Abstract: Self-organized phases in cold atoms as a result of light-mediated
interactions can be induced by coupling to internal or external degrees of the
atoms. There has been growing interest in the interaction of internal spin
degrees of freedom with the optomechanical dynamics of the external
centre-of-mass motion. We present a model for the coupling between magnetic and
optomechanical structuring in a $J=1/2 \to J'=3/2$ system in a single-mirror
feedback scheme, being representative for a larger class of diffractively
coupled systems such as longitudinally pumped cavities and counter-propagating
beam schemes. For negative detunings, a linear stability analysis demonstrates
that optical pumping and optomechanical driving cooperate to create magnetic
ordering. However, for long-period transmission gratings the magnetic driving
will strongly dominate the optomechanical driving, unless one operates very
close to the existence range of the magnetic instability. At small lattice
periods, in particular at wavelength-scale periods, the optomechanical driving
will dominate.
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