Microtrap arrays on magnetic film atom chips for quantum information science
arXiv:1104.3067 · doi:10.1007/s11128-011-0295-1
Abstract
We present two different strategies for developing a quantum information science platform, based on our experimental results with magnetic microtrap arrays on a magnetic-film atom chip. The first strategy aims for mesoscopic ensemble qubits in a lattice of ~5 μm period, so that qubits can be individually addressed and interactions can be mediated by Rydberg excitations. The second strategy aims for direct quantum simulators using sub-optical lattices of ~100 nm period. These would allow the realization of condensed matter inspired quantum many-body systems, such as Hubbard models in new parameter regimes. The two approaches raise quite different issues, some of which are identified and discussed.
10 pages, 6 figures, submitted to special issue "Quantum Information with Neutral Particles" of "Quantum Information Processing"
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Cited by in corpus (24)
- Superconducting Vortex Lattices for Ultracold Atoms
- Stability of a trapped atom clock on a chip
- Simulating Quantum Spin Models using Rydberg-Excited Atomic Ensembles in Magnetic Microtrap Arrays
- Magnetic-film atom chip with 10 m period lattices of microtraps for quantum information science with Rydberg atoms
- Periodic Array of Bose-Einstein condensates in a Magnetic Lattice
- Manipulating Rydberg atoms close to surfaces at cryogenic temperatures
- Novel -wave superfluids of fermionic polar molecules
- Finite-size effects in strongly interacting Rydberg gases
- Sub-micron period lattice structures of magnetic microtraps for ultracold atoms on an atom chip
- Magnetic lattices for ultracold atoms and degenerate quantum gases
- Probing the magnetic moment of FePt micromagnets prepared by Focused Ion Beam milling
- Collective suppression of optical hyperfine pumping in dense clouds of atoms in microtraps
- Controlling Stray Electric Fields on an Atom Chip for Rydberg Experiments
- Adsorbate dynamics on a silica-coated gold surface measured by Rydberg Stark spectroscopy
- Trapping ultracold atoms at 100 nm from a chip surface in a 0.7-micrometer-period magnetic lattice
- Dynamical Generation of Topological Magnetic Lattices for Ultracold Atoms
- Radiofrequency spectroscopy of a linear array of Bose-Einstein condensates in a magnetic lattice
- A minimalistic and optimized conveyor belt for neutral atoms
- Designs of magnetic atom-trap lattices for quantum simulation experiments
- Current-induced magnetization hysteresis defines atom trapping in a superconducting atomchip
- Deposition and patterning of magnetic atom trap lattices in FePt films with periods down to 200nm
- Stability analysis of a magnetic waveguide with self-generated offset field
- Sensitive Absorption Imaging of Single Atoms in Front of a Mirror
- Superfluidity of identical fermions in an optical lattice: atoms and polar molecules