Operation of a planar-electrode ion-trap array with adjustable RF electrodes
arXiv:1402.0791 · doi:10.1088/1367-2630/18/2/023047
Abstract
One path to realizing systems of trapped atomic ions suitable for large-scale quantum computing and simulation is to create a two-dimensional array of ion traps. Interactions between nearest-neighbouring ions could then be turned on and off by tuning the ions' relative positions and frequencies. We demonstrate and characterize the operation of a planar-electrode ion-trap array. Driving the trap with a network of phase-locked radio-frequency (RF) resonators which provide independently variable voltage amplitudes we vary the position and motional frequency of a 40Ca+ ion in two dimensions within the trap array. With suitable miniaturization of the trap structure, this provides a viable architecture for large-scale quantum simulations.
17 pages, 8 figures
References in corpus (20)
- Experimental Quantum Computations on a Topologically Encoded Qubit
- Ion-trap measurements of electric-field noise near surfaces
- Suppression of Heating Rates in Cryogenic Surface-Electrode Ion Traps
- Large Scale Quantum Computation in an Anharmonic Linear Ion Trap
- Fluorescence during Doppler cooling of a single trapped atom
- Fractional quantum Hall states in lattices: Local models and physical implementation
- Tunable spin-spin interactions and entanglement of ions in separate wells
- Efficient Fiber Optic Detection of Trapped Ion Fluorescence
- Laserless trapped-ion quantum simulations without spontaneous scattering using microtrap arrays
- Two-dimensional ion trap lattice on a microchip
- Two-Dimensional Arrays of RF Ion Traps with Addressable Interactions
- Ball-grid array architecture for microfabricated ion traps
- Deterministic reordering of 40Ca+ ions in a linear segmented Paul trap
- Bright Source of Cold Ions for Surface-Electrode Traps
- A Two-Dimensional Lattice Ion Trap for Quantum Simulation
- A surface electrode point Paul trap
- Quantum disorder in the spatially completely anisotropic triangular lattice I: Heisenberg antiferromagnet
- Quantum disorder in the spatially completely anisotropic triangular lattice II: frustrated hard-core bosons
- Long-term drifts of stray electric fields in a Paul trap
- Topological Phenomena in Trapped Ion Systems
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- Optimised fast gates for quantum computing with trapped ions
- Interference in a Prototype of a two-dimensional Ion Trap Array Quantum Simulator
- Two-dimensional linear trap array for quantum information processing
- Industrially Microfabricated Ion Trap with 1 eV Trap Depth
- Ion trap architectures and new directions
- Optimised surface-electrode ion-trap junctions for experiments with cold molecular ions
- Micromotion-Enhanced Fast Entangling Gates For Trapped Ion Quantum Computing
- Synthetic gauge theories based on parametric excitations of trapped ions
- Scalable quantum computation with fast gates in two-dimensional microtrap arrays of trapped ions
- Micromotion minimization using Ramsey interferometry
- Cooperative engineering the multiple radio-frequency fields to reduce the X-junction barrier for ion trap chips
- High-speed quantum networking by ship
- Scalable chip-based 3D ion traps
- Realization of two-dimensional crystal of ions in a monolithic Paul trap