Quantum Routing and Entanglement Dynamics Through Bottlenecks
Dhruv Devulapalli, Chao Yin, Andrew Y. Guo, Eddie Schoute, Andrew M. Childs, Alexey V. Gorshkov, Andrew Lucas

TL;DR
This paper establishes new lower bounds on quantum routing times through vertex bottlenecks and demonstrates improved entanglement generation efficiency, advancing understanding of quantum information flow in constrained architectures.
Contribution
It provides the first non-trivial lower bounds on quantum routing time in systems with vertex bottlenecks and improves entanglement scaling bounds, highlighting fundamental limits and efficiencies.
Findings
Lower bounds on routing time scale as (N_R^{1-\u03b4}/\u221a{N_L}N_C)
Entanglement generation scales as O((N_L t) to O((N_L t)
Optimal routing on star graph in time (N) in free particle systems
Abstract
To implement arbitrary quantum circuits in architectures with restricted interactions, one may effectively simulate all-to-all connectivity by routing quantum information. We consider the entanglement dynamics and routing between two regions only connected through an intermediate "bottleneck" region with few qubits. In such systems, where the entanglement rate is restricted by a vertex boundary rather than an edge boundary of the underlying interaction graph, existing results such as the small incremental entangling theorem give only a trivial constant lower bound on the routing time (the minimum time to perform an arbitrary permutation). We significantly improve the lower bound on the routing time in systems with a vertex bottleneck. Specifically, for any system with two regions with qubits, respectively, coupled only through an intermediate region with …
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Quantum many-body systems
