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Coherent scattering 2D cooling in levitated cavity optomechanics

Quantum Physics 2021-04-27 v3

Abstract

The strong light-matter optomechanical coupling offered by Coherent Scattering (CS) set-ups have allowed the experimental realisation of quantum ground state cavity cooling of the axial motion of a levitated nanoparticle [U. Deli\'{c} et al., Science 367, 892 (2020)]. An appealing milestone is now quantum 2D cooling of the full in-plane motion, in any direction in the transverse plane. By a simple adjustment of the trap polarisation, one obtains two nearly equivalent modes, with similar frequencies ωxωy\omega_{x}\sim\omega_{y} and optomechanical couplings gxgyg_{x}\simeq g_{y} -- in this experimental configuration we identify an optimal trap ellipticity, nanosphere size and cavity linewidth which allows for efficient 2D cooling. Moreover, we find that 2D cooling to occupancies nx+ny1n_{x}+n_{y}\lesssim1 at moderate vacuum (10610^{-6} mbar) is possible in a "Goldilocks" zone bounded by κΓ/4gx,gyωxωyκ\sqrt{\kappa\Gamma/4}\lesssim g_{x},g_{y}\lesssim|\omega_{x}-\omega_{y}|\lesssim\kappa, where one balances the need to suppress dark modes whilst avoiding far-detuning of either mode or low cooperativities, and κ\kappa (Γ\Gamma) is the cavity decay rate (motional heating rate). With strong-coupling regimes gx,gyκg_{x},g_{y}\gtrsim\kappa in view one must consider the genuine three-way hybridisation between xx, yy and the cavity light mode resulting in hybridized bright/dark modes. Finally, we show that bright/dark modes in the levitated set-up have a simple geometrical interpretation, related by rotations in the transverse plane, with implications for directional sensing.

Keywords

Cite

@article{arxiv.2012.15822,
  title  = {Coherent scattering 2D cooling in levitated cavity optomechanics},
  author = {Marko Toroš and Uroš Delić and Fagin Hales and Tania S. Monteiro},
  journal= {arXiv preprint arXiv:2012.15822},
  year   = {2021}
}

Comments

17 pages; 6 figures

R2 v1 2026-06-23T21:39:40.564Z