Engineering Graph States of Atomic Ensembles by Photon-Mediated
Entanglement
- URL: http://arxiv.org/abs/2212.11961v2
- Date: Fri, 1 Sep 2023 01:14:28 GMT
- Title: Engineering Graph States of Atomic Ensembles by Photon-Mediated
Entanglement
- Authors: Eric S. Cooper, Philipp Kunkel, Avikar Periwal, Monika Schleier-Smith
- Abstract summary: We report on the generation of continuous-variable graph states of atomic spin ensembles.
The edges represent the entanglement structure, which we program by combining global photon-mediated interactions in an optical cavity with local spin rotations.
We further engineer a four-mode square graph state, highlighting the flexibility of our approach.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Graph states are versatile resources for quantum computation and
quantum-enhanced measurement. Their generation illustrates a high level of
control over entanglement. We report on the generation of continuous-variable
graph states of atomic spin ensembles, which form the nodes of the graph. The
edges represent the entanglement structure, which we program by combining
global photon-mediated interactions in an optical cavity with local spin
rotations. By tuning the entanglement between two subsystems, we either
localize correlations within each subsystem or enable Einstein-Podolsky-Rosen
steering. We further engineer a four-mode square graph state, highlighting the
flexibility of our approach. Our method is scalable to larger and more complex
graphs, laying groundwork for measurement-based quantum computation and
advanced protocols in quantum metrology.
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