Optical Lattices as Waveguides and Beam Splitters for Atom Interferometry: An Analytical Treatment and Proposal of Applications
arXiv:0910.3435 · doi:10.1103/PhysRevA.82.013638
Abstract
We provide an analytical description of the dynamics of an atom in an optical lattice using the method of perturbative adiabatic expansion. A precise understanding of the lattice-atom interaction is essential to taking full advantage of the promising applications that optical lattices offer in the field of atom interferometry. One such application is the implementation of Large Momentum Transfer (LMT) beam splitters that can potentially provide multiple order of magnitude increases in momentum space separations over current technology. We also propose interferometer geometries where optical lattices are used as waveguides for the atoms throughout the duration of the interferometer sequence. Such a technique could simultaneously provide a multiple order of magnitude increase in sensitivity and a multiple order of magnitude decrease in interferometer size for many applications as compared to current state-of-the-art atom interferometers.
25 pages, 7 figures
References in corpus (12)
- An Atomic Gravitational Wave Interferometric Sensor (AGIS)
- Atom Interferometry with up to 24-Photon-Momentum-Transfer Beam Splitters
- General Relativistic Effects in Atom Interferometry
- Combination of Bloch oscillations with a Ramsey-Bordé interferometer : new determination of the fine structure constant
- Large Momentum Beamsplitter using Bloch Oscillations
- Atom interferometry tests of local Lorentz invariance in gravity and electrodynamics
- Atom interferometers with scalable enclosed area
- Atom-wave diffraction between the Raman-Nath and the Bragg regime: Effective Rabi frequency, losses, and phase shifts
- Atom interferometer as a selective sensor of rotation or gravity
- Noise-Immune Conjugate Large-Area Atom Interferometers
- Testing Atom and Neutron Neutrality with Atom Interferometry
- A new photon recoil experiment: towards a determination of the fine structure constant
Cited by in corpus (20)
- Test of Einstein Equivalence Principle for 0-spin and half-integer-spin atoms: Search for spin-gravity coupling effects
- High-accuracy inertial measurements with cold-atom sensors
- An Atomic Gravitational Wave Interferometric Sensor in Low Earth Orbit (AGIS-LEO)
- The Feasibility of a Fully Miniaturized Magneto-Optical Trap for Portable Ultracold Quantum Technology
- Local gravity measurement with the combination of atom interferometry and Bloch oscillations
- Gravitational redshift in quantum-clock interferometry
- Large-momentum-transfer Bragg interferometer with strontium atoms
- Representation-free description of light-pulse atom interferometry including non-inertial effects
- Symmetric Bloch oscillations of matter waves
- Raman laser spectroscopy of Wannier Stark states
- Robust Atom Optics for Bragg Atom Interferometry
- Robust Optimized Pulse Schemes for Atomic Fountain Interferometry
- Principles of tractor atom interferometry
- Tractor Atom Interferometry
- Interferometer for force measurement by shortcut-to-adiabatic arms guiding
- A Toolbox for Linear Optics in a 1D Lattice via Minimal Control
- Unified laboratory-frame analysis of atomic gravitational-wave sensors
- Lattice dynamics in an emergent Zeeman lattice
- Offset Simultaneous Conjugate Atom Interferometers
- Sequantial large momentum transfer exploiting rectangular Raman pulses