Shortcut to Multipartite Entanglement Generation: A Graph Approach to Boson Subtractions
Seungbeom Chin, Yong-Su Kim, Marcin Karczewski

TL;DR
This paper introduces a graph-based method for efficiently generating multipartite entanglement in bosonic systems using heralding, significantly improving the design of entanglement schemes for quantum information tasks.
Contribution
The authors develop a novel graph approach to systematically find entanglement generation schemes, outperforming previous methods in efficiency and scope for multipartite states.
Findings
Identified efficient schemes for N-partite GHZ and W states
Extended the approach to superpositions of entangled states
Proposed a linear optical setup for Bell state generation
Abstract
We propose a graph method for systematically searching for schemes that can generate multipartite entanglement in linear bosonic systems with heralding. While heralded entanglement generation offers more tolerable schemes for quantum tasks than postselected ones, it is generally more challenging to find appropriate circuits for multipartite systems. We show that our graph mapping from boson subtractions provides handy tactics to overcome the limitations in circuit designs. We present a practical strategy to mitigate the limitation through the implementation of our graph technique. Our physical setup is based on the sculpting protocol, which utilizes an spatially overlapped subtractions of single bosons to convert Fock states of evenly distributed bosons into entanglement. We have identified general schemes for qubit N-partite GHZ and W states, which are significantly more efficient…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
