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Ferroelectric nano-traps for polar molecules

Quantum Gases 2018-02-21 v1 Atomic Physics Quantum Physics

Abstract

We propose and analyze an electrostatic-optical nano-scale trap for cold diatomic polar molecules. The main ingredient of our proposal is an square-array of ferroelectric nano-rods {with alternating polarization}. We show that, in contrast to electrostatic traps using the linear Stark effect, a quadratic Stark potential supports long-lived trapped states. The molecules are kept at a fixed height from the nano-rods by a standing-wave optical dipole trap. For the molecules and materials considered, we find that nano-traps with trap frequency up to 1MHz, ground-state width 20\sim20nm with lattice periodicity of 200\sim 200nm. Analyzing the loss mechanisms due to non-adiabaticity, surface-induced radiative transitions, and laser-induced transitions, we show the existence of trapped states with life-time 1\sim 1s, competitive with current traps created via optical mechanisms. As an application we extend our discussion to an 1D array of nano-traps to simulate of a long-range spin Hamiltonian in our structure.

Keywords

Cite

@article{arxiv.1710.06357,
  title  = {Ferroelectric nano-traps for polar molecules},
  author = {Omjyoti Dutta and Geza Giedke},
  journal= {arXiv preprint arXiv:1710.06357},
  year   = {2018}
}
R2 v1 2026-06-22T22:17:07.096Z