Optical Dipole Trapping of Holmium
POSTER
Abstract
Neutral Holmium$'$s 128 ground hyperfine states, the most of any non-radioactive element, is a testbed for quantum control of a very high dimensional Hilbert space, and offers a promising platform for quantum computing. Its high magnetic moment also makes magnetic trapping a potentially viable alternative to optical trapping. Previously we have cooled Holmium atoms in a MOT on a 410.5 nm transition, characterized its Rydberg spectra, and made measurements of the dynamic scalar and tensor polarizabilities. We report here on progress towards narrow line cooling and magnetic trapping of single atoms.
Authors
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Christopher Yip
University of Wisconsin - Madison
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Donald Booth
Argonne National Laboratory
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Huaxia Zhou
University of Wisconsin - Madison
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Jeffrey Collett
Lawrence University
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Mark Saffman
University of Wisconsin - Madison & ColdQuanta, University of Wisconsin-Madison, University of Wisconsin - Madison, Department of Physics, University of Wisconsin - Madison, University of Wisconsin - Madison and ColdQuanta, Inc.