In this article we discuss and compare different ways to engineer an interface between ultracold atoms and micro- and nanomechanical oscillators. We start by analyzing a direct mechanical coupling of a single atom or ion to a mechanical oscillator and show that the very different masses of the two systems place a limit on the achievable coupling constant in this scheme. We then discuss several promising strategies for enhancing the coupling: collective enhancement by using a large number of atoms in an optical lattice in free space, coupling schemes based on high-finesse optical cavities, and coupling to atomic internal states. Throughout the manuscript we discuss both theoretical proposals and first experimental implementations.
@article{arxiv.1103.1820,
title = {Coupling ultracold atoms to mechanical oscillators},
author = {David Hunger and Stephan Camerer and Maria Korppi and Andreas Jöckel and Theodor W. Hänsch and Philipp Treutlein},
journal= {arXiv preprint arXiv:1103.1820},
year = {2015}
}