Engineering tunable decoherence-free subspaces with collective atom-cavity interactions

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Auteurs principaux: Vaecairn, Lyryl H. C., Reilly, Jarrod T., Wilson, John Drew, Jaeger, Simon B., Holland, Murray
Format: Preprint
Publié: 2024
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author Vaecairn, Lyryl H. C.
Reilly, Jarrod T.
Wilson, John Drew
Jaeger, Simon B.
Holland, Murray
author_facet Vaecairn, Lyryl H. C.
Reilly, Jarrod T.
Wilson, John Drew
Jaeger, Simon B.
Holland, Murray
contents We propose schemes to design and control a time-dependent decoherence-free subspace (DFS) in a dissipative atom-cavity system. These schemes use atoms with three internal energy levels, which allows for the DFS to be multi-dimensional--a condition important for quantum sensing, simulation, and computation. We consider the use of tunable external driving lasers to transfer the system from a coherent spin state to a highly degenerate DFS. We find that the typical state in the DFS is highly entangled. Throughout evolution the state is kept in an instantaneous DFS, thereby allowing for pure states to be prepared. We develop adiabatic shortcuts to carry out this evolution with higher purity and fidelity than standard adiabatic and dissipative methods.
format Preprint
id arxiv_https___arxiv_org_abs_2412_02921
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Engineering tunable decoherence-free subspaces with collective atom-cavity interactions
Vaecairn, Lyryl H. C.
Reilly, Jarrod T.
Wilson, John Drew
Jaeger, Simon B.
Holland, Murray
Quantum Physics
We propose schemes to design and control a time-dependent decoherence-free subspace (DFS) in a dissipative atom-cavity system. These schemes use atoms with three internal energy levels, which allows for the DFS to be multi-dimensional--a condition important for quantum sensing, simulation, and computation. We consider the use of tunable external driving lasers to transfer the system from a coherent spin state to a highly degenerate DFS. We find that the typical state in the DFS is highly entangled. Throughout evolution the state is kept in an instantaneous DFS, thereby allowing for pure states to be prepared. We develop adiabatic shortcuts to carry out this evolution with higher purity and fidelity than standard adiabatic and dissipative methods.
title Engineering tunable decoherence-free subspaces with collective atom-cavity interactions
topic Quantum Physics
url https://arxiv.org/abs/2412.02921