Steady-state spin synchronization through the collective motion of trapped ions
ORAL
Abstract
Ultranarrow-linewidth atoms coupled to a lossy optical cavity mode synchronize, i.e. develop correlations, and exhibit steady-state superradiance when continuously repumped. This type of system displays rich collective physics and promises metrological applications. These features inspire us to investigate if a model inspired from cavity superradiance can generate analogous spin synchronization in a different platform that is one of the most robust and controllable experimental testbeds currently available: ion-trap systems. We design a system with a primary and secondary species of ions that share a common set of normal modes of vibration. In analogy to the lossy optical mode, we propose to use a lossy normal mode, obtained by sympathetic cooling with the secondary species of ions, to mediate spin synchronization in the primary species of ions. Our numerical study shows that spin-spin correlations develop, leading to a macroscopic collective spin in steady-state. We propose an experimental method based on Ramsey interferometry to detect signatures of this collective spin; we predict that correlations prolong the visibility of Ramsey fringes, and that population statistics at the end of the Ramsey sequence can be used to directly infer spin-spin correlations.
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Authors
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Athreya Shankar
JILA, NIST, and Department of Physics, University of Colorado Boulder, Boulder
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John Cooper
JILA, NIST, and Department of Physics, University of Colorado Boulder, Boulder
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Justin Bohnet
National Institute of Standards and Technology, NIST, Boulder, CO, Time and Frequency Division, National Institute of Standards and Technology, Boulder
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John Bollinger
National Institute of Standards and Technology, NIST, Boulder, CO, Time and Frequency Division, National Institute of Standards and Technology, Boulder
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Murray Holland
JILA, CU Boulder, Department of Physics and JILA, University of Colorado, Boulder, JILA, NIST, and Department of Physics, University of Colorado Boulder, Boulder