Two-dimensional array of microtraps with atomic shift register on a chip
arXiv:0803.2151 · doi:10.1088/1367-2630/11/2/023021
Abstract
Arrays of trapped atoms are the ideal starting point for developing registers comprising large numbers of physical qubits for storing and processing quantum information. One very promising approach involves neutral atom traps produced on microfabricated devices known as atom chips, as almost arbitrary trap configurations can be realised in a robust and compact package. Until now, however, atom chip experiments have focused on small systems incorporating single or only a few individual traps. Here we report experiments on a two-dimensional array of trapped ultracold atom clouds prepared using a simple magnetic-film atom chip. We are able to load atoms into hundreds of tightly confining and optically resolved array sites. We then cool the individual atom clouds in parallel to the critical temperature required for quantum degeneracy. Atoms are shuttled across the chip surface utilising the atom chip as an atomic shift register and local manipulation of atoms is implemented using a focused laser to rapidly empty individual traps.
6 pages, 4 figures
References in corpus (14)
- Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atoms
- Observation of Rydberg blockade between two atoms
- A microfabricated surface-electrode ion trap for scalable quantum information processing
- Mesoscopic Rydberg Gate based on Electromagnetically Induced Transparency
- T-junction ion trap array for two-dimensional ion shuttling, storage and manipulation
- Spatially resolved observation of dipole-dipole interaction between Rydberg atoms
- Observation of deviations from ideal gas thermodynamics in a trapped Bose-Einstein condensed gas
- Trapping molecules on a chip in traveling potential wells
- A lattice of microtraps for ultracold atoms based on patterned magnetic films
- One dimensional lattice of permanent magnetic microtraps for ultracold atoms on an atom chip
- Fully permanent magnet atom chip for Bose-Einstein condensation
- Atom trapping with a thin magnetic film
- Effect of Magnetization Inhomogeneity on Magnetic Microtraps for Atoms
- Topological constraints on magnetostatic traps
Cited by in corpus (57)
- A Rydberg Quantum Simulator
- Quantum computing with atomic qubits and Rydberg interactions: Progress and challenges
- Mesoscopic Rydberg Gate based on Electromagnetically Induced Transparency
- Coherent manipulation of Bose-Einstein condensates with state-dependent microwave potentials on an atom chip
- Experimental demonstration of single-site addressability in a two-dimensional optical lattice
- Spatially Resolved Excitation of Rydberg Atoms and Surface Effects on an Atom Chip
- Two-Stage Melting in Systems of Strongly Interacting Rydberg Atoms
- Robustness of high-fidelity Rydberg gates with single-site addressability
- Improved detection of small atom numbers through image processing
- Grating chips for quantum technologies
- Antiferromagnetic long-range order in dissipative Rydberg lattices
- Quantum gates in mesoscopic atomic ensembles based on adiabatic passage and Rydberg blockade
- Superconducting Vortex Lattices for Ultracold Atoms
- Digital Quantum Simulation with Rydberg Atoms
- Quantum computing implementations with neutral particles
- Fermionic collective excitations in a lattice gas of Rydberg atoms
- 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
- Rydberg excitation of trapped cold ions: A detailed case study
- Periodic Array of Bose-Einstein condensates in a Magnetic Lattice
- Quantum thermal machine acting on a many-body quantum system: role of correlations in thermodynamic tasks
- Sub-Poissonian atom number fluctuations by three-body loss in mesoscopic ensembles
- Evaporative cooling of a small number of atoms in a single-beam microscopic dipole trap
- Microtrap arrays on magnetic film atom chips for quantum information science
- Optimized magnetic lattices for ultracold atomic ensembles
- Stark-tuned Förster resonance and dipole blockade for two to five cold Rydberg atoms: Monte Carlo simulations for various spatial configurations
- Manipulating ultracold atoms with a reconfigurable nanomagnetic system of domain walls
- Zone-plate focusing of Bose-Einstein condensates for atom optics and erasable high-speed lithography of quantum electronic components
- Sub-micron period lattice structures of magnetic microtraps for ultracold atoms on an atom chip
- Sub-Poissonian atom number fluctuations using light-assisted collisions
- Measurement of the atom number distribution in an optical tweezer using single photon counting
- Engineered Open Systems and Quantum Simulations with Atoms and Ions
- Creating collective many-body states with highly excited atoms
- Magnetic trapping of ultracold Rydberg atoms in low angular momentum states
- 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
- 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
- Trapping of Rydberg Atoms in Tight Magnetic Microtraps
- Generating an effective magnetic lattice for cold atoms
- Dressing of Ultracold Atoms by their Rydberg States in a Ioffe-Pritchard Trap
- Radiofrequency spectroscopy of a linear array of Bose-Einstein condensates in a magnetic lattice
- Dynamical Generation of Topological Magnetic Lattices for Ultracold Atoms
- Experiments on a videotape atom chip: fragmentation and transport studies
- Spectral properties of finite laser-driven lattices of ultracold Rydberg atoms
- Decoherence effects in quantum nondemolition measurement induced entanglement between Bose-Einstein condensates
- Nanomagnetic engineering of the properties of domain wall atom traps
- Designs of magnetic atom-trap lattices for quantum simulation experiments
- A counterfactual Rydberg gate for photons
- Creation of collective many-body states and single photons from two-dimensional Rydberg lattice gases
- Design and Characterization of a Field-Switchable Nanomagnetic Atom Mirror
- Rydberg rings
- Observations of indirect exciton trapping in one- and two-dimensional magnetic lattices
- Distributed thermal tasks on many-body systems through a single quantum machine
- Sensitive Absorption Imaging of Single Atoms in Front of a Mirror
- Material Science for Quantum Computing with Atom Chips