Reconfigurable, site-selective manipulation of atomic quantum systems in two-dimensional arrays of dipole traps
arXiv:1001.3430 · doi:10.1103/PhysRevA.81.060308
Abstract
We trap atoms in versatile two-dimensional (2D) arrays of optical potentials, prepare flexible 2D spin configurations, perform site-selective coherent manipulation, and demonstrate the implementation of simultaneous measurements of different system properties, such as dephasing and decoherence. This novel approach for the flexible manipulation of atomic quantum systems is based on the combination of 2D arrays of microlenses and 2D arrays of liquid crystal light modulators. It offers novel types of control for the investigation of quantum degenerate gases, quantum information processing, and quantum simulations.
References in corpus (9)
- A quantum gas microscope - detecting single atoms in a Hubbard regime optical lattice
- Demonstration of a neutral atom controlled-NOT quantum gate
- Entanglement of two individual neutral atoms using Rydberg blockade
- Controlled exchange interaction between pairs of neutral atoms in an optical lattice
- Analysis of dephasing mechanisms in a standing wave dipole trap
- Nearest-Neighbor Detection of Atoms in a 1D Optical Lattice by Fluorescence Imaging
- Collective Rydberg excitations of an atomic gas confined in a ring lattice
- Coherent manipulation of atomic qubits in optical micropotentials
- Manipulating mesoscopic multipartite entanglement with atom-light interfaces
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