Enhanced quantum control of individual ultracold molecules using optical
tweezer arrays
- URL: http://arxiv.org/abs/2401.13593v2
- Date: Thu, 25 Jan 2024 17:19:35 GMT
- Title: Enhanced quantum control of individual ultracold molecules using optical
tweezer arrays
- Authors: Daniel K. Ruttley, Alexander Guttridge, Tom R. Hepworth, Simon L.
Cornish
- Abstract summary: Control over the quantum states of individual molecules is crucial in the quest to harness their rich internal structure and dipolar interactions.
We develop a toolbox of techniques for the control and readout of individually trapped polar molecules in an array of optical tweezers.
- Score: 44.99833362998488
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Control over the quantum states of individual molecules is crucial in the
quest to harness their rich internal structure and dipolar interactions for
applications in quantum science. In this paper, we develop a toolbox of
techniques for the control and readout of individually trapped polar molecules
in an array of optical tweezers. Starting with arrays of up to eight Rb and
eight Cs atoms, we assemble arrays of RbCs molecules in their rovibrational and
hyperfine ground state with an overall efficiency of 48(2)%. We demonstrate
global microwave control of multiple rotational states of the molecules and use
an auxiliary tweezer array to implement site-resolved addressing and state
control. We show how the rotational state of the molecule can be mapped onto
the position of Rb atoms and use this capability to readout multiple rotational
states in a single experimental run. Further, using a scheme for the
mid-sequence detection of molecule formation errors, we perform rearrangement
of assembled molecules to prepare small defect-free arrays. Finally, we discuss
a feasible route to scaling to larger arrays of molecules.
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