Entangled states of trapped ions allow measuring the magnetic field gradient of a single atomic spin
arXiv:1207.0846 · doi:10.1209/0295-5075/99/53001
Abstract
Using trapped ions in an entangled state we propose detecting a magnetic dipole of a single atom at distance of a few m. This requires a measurement of the magnetic field gradient at a level of about 10 Tesla/m. We discuss applications e.g. in determining a wide variation of ionic magnetic moments, for investigating the magnetic substructure of ions with a level structure not accessible for optical cooling and detection,and for studying exotic or rare ions, and molecular ions. The scheme may also be used for measureing spin imbalances of neutral atoms or atomic ensembles trapped by optical dipole forces. As the proposed method relies on techniques well established in ion trap quantum information processing it is within reach of current technology.
4 pages, 2 fig
References in corpus (14)
- Scalable multi-particle entanglement of trapped ions
- 14-qubit entanglement: creation and coherence
- Nonlinear atom interferometer surpasses classical precision limit
- Towards fault-tolerant quantum computing with trapped ions
- A trapped single ion inside a Bose-Einstein condensate
- 'Designer atoms' for quantum metrology
- Dynamics of a cold trapped ion in a Bose-Einstein condensate
- Single Ion Quantum Lock-In Amplifier
- Deterministic entanglement of ions in thermal states of motion
- Realization of a single Josephson junction for Bose-Einstein condensates
- Quantum frequency estimation with trapped ions and atoms
- A bosonic Josephson junction controlled by a single trapped ion
- Temperature-independent quantum logic for molecular spectroscopy
- A single ion as a shot noise limited magnetic field gradient probe
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