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arXiv · 0801.0600

State-dependent, addressable subwavelength lattices with cold atoms

Abstract

We discuss how adiabatic potentials can be used to create addressable lattices on a subwavelength scale, which can be used as a tool for local operations and readout within a lattice substructure, while taking advantage of the faster timescales and higher energy and temperature scales determined by the shorter lattice spacing. For alkaline-earth-like atoms with non-zero nuclear spin, these potentials can be made state dependent, for which we give specific examples with $^{171}$Yb atoms. We discuss in detail the limitations in generating the lattice potentials, in particular non-adiabatic losses, and show that the loss rates can always be made exponentially small by increasing the laser power.

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W. Yi, A. J. Daley, G. Pupillo, P. Zoller. 2008-07-09. State-dependent, addressable subwavelength lattices with cold atoms. https://doi.org/10.1088/1367-2630%2F10%2F7%2F073015

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