Realizing a Deterministic Source of Multipartite-Entangled Photonic
Qubits
- URL: http://arxiv.org/abs/2005.07060v1
- Date: Thu, 14 May 2020 15:18:12 GMT
- Title: Realizing a Deterministic Source of Multipartite-Entangled Photonic
Qubits
- Authors: Jean-Claude Besse, Kevin Reuer, Michele C. Collodo, Arne Wulff, Lucien
Wernli, Adrian Copetudo, Daniel Malz, Paul Magnard, Abdulkadir Akin, Mihai
Gabureac, Graham J. Norris, J. Ignacio Cirac, Andreas Wallraff, Christopher
Eichler
- Abstract summary: Localizable entanglement persists over a distance of approximately ten photonic qubits, outperforming any previous deterministic scheme.
We reconstruct the entire quantum many-body state for up to $N=4$ photonic modes and infer the quantum state for even larger $N$ from process tomography.
- Score: 0.4355994393060723
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Sources of entangled electromagnetic radiation are a cornerstone in quantum
information processing and offer unique opportunities for the study of quantum
many-body physics in a controlled experimental setting. While multi-mode
entangled states of radiation have been generated in various platforms, all
previous experiments are either probabilistic or restricted to generate
specific types of states with a moderate entanglement length. Here, we
demonstrate the fully deterministic generation of purely photonic entangled
states such as the cluster, GHZ, and W state by sequentially emitting microwave
photons from a controlled auxiliary system into a waveguide. We tomographically
reconstruct the entire quantum many-body state for up to $N=4$ photonic modes
and infer the quantum state for even larger $N$ from process tomography. We
estimate that localizable entanglement persists over a distance of
approximately ten photonic qubits, outperforming any previous deterministic
scheme.
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