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DOE OSTI Β· 3025085

Quantum Routing and Entanglement Dynamics Through Bottlenecks

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 β€œbottleneck” 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 𝐿,𝑅 with 𝑁 𝐿 ,𝑁 𝑅 qubits, respectively, coupled only through an intermediate region 𝐢 with 𝑁 𝐢 qubits, for any 𝛿 > 0 we show a lower bound of Ω⁒(𝑁$^{1βˆ’π›Ώ}_{𝑅}$/βˆšπ‘ 𝐿⁒ 𝑁 𝐢 ) on the Hamiltonian quantum routing time when using piecewise time-independent Hamiltonians, or time-dependent Hamiltonians subject to a smoothness condition. We also prove an upper bound on the average amount of bipartite entanglement between 𝐿 and 𝐢,𝑅 that can be generated in time 𝑑 by such architecture-respecting Hamiltonians in systems constrained by vertex bottlenecks, improving the scaling in the system size from 𝑂⁑(𝑁 𝐿⁒ 𝑑) to 𝑂⁑(βˆšπ‘ 𝐿⁒ 𝑑). As a special case, when applied to the star graph (i.e., one vertex connected to 𝑁 leaves), we obtain an Ω⁑(βˆšπ‘ 1βˆ’π›Ώ ) lower bound on the routing time and on the time to prepare 𝑁/2 Bell pairs between the vertices. We also show that, in systems of free particles, we can route optimally on the star graph in time Θ⁑(βˆšπ‘) using Hamiltonian quantum routing, obtaining a speedup over gate-based routing, which takes time Θ⁑(𝑁).

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BibTeXRIS

Devulapalli, Dhruv [NIST/University of Maryland, College Park, MD (United States)] (ORCID:000000022612308X), Yin, Chao [University of Colorado, Boulder, CO (United States)] (ORCID:000000033379310X), Guo, Andrew Y. [Quantinuum, Broomfield, CO (United States)] (ORCID:0000000181212977), Schoute, Eddie [Los Alamos National Laboratory (LANL), Los Alamos, NM (United States); MIT-IBM Watson AI Lab, Cambridge, MA (United States)] (ORCID:0000000256131443), Childs, Andrew M. [NIST/University of Maryland, College Park, MD (United States)] (ORCID:000000029903837X), Gorshkov, Alexey V. [NIST/University of Maryland, College Park, MD (United States)] (ORCID:0000000305093421), Lucas, Andrew [University of Colorado, Boulder, CO (United States)]. 2026-01-15. Quantum Routing and Entanglement Dynamics Through Bottlenecks. https://doi.org/10.1103/7b1x-hjcy

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