Cooling atomic ions with visible and infra-red light
arXiv:1611.08414 · doi:10.1088/1367-2630/aa7150
Abstract
We demonstrate the ability to load, cool and detect singly-charged calcium ions in a surface electrode trap using only visible and infrared lasers for the trapped-ion control. As opposed to the standard methods of cooling using dipole-allowed transitions, we combine power broadening of a quadrupole transition at 729 nm with quenching of the upper level using a dipole allowed transition at 854 nm. By observing the resulting 393 nm fluorescence we are able to perform background-free detection of the ion. We show that this system can be used to smoothly transition between the Doppler cooling and sideband cooling regimes, and verify theoretical predictions throughout this range. We achieve scattering rates which reliably allow recooling after collision events and allow ions to be loaded from a thermal atomic beam. This work is compatible with recent advances in optical waveguides, and thus opens a path in current technologies for large-scale quantum information processing. In situations where dielectric materials are placed close to trapped ions, it carries the additional advantage of using wavelengths which do not lead to significant charging, which should facilitate high rate optical interfaces between remotely held ions.
14 pages, 6 figures
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- Single-shot energy measurement of a single atom and the direct reconstruction of its energy distribution
- Systematic study of tunable laser cooling for trapped-ion experiments
- Defying Conventional Wisdom in Spectroscopy: Power Narrowing on IBM Quantum
- Non-invasive mid-circuit measurement and reset on atomic qubits
- Laser cooling and qubit measurements on a forbidden transition in neutral Cs atoms