Non-Local Phase Estimation with a Rydberg-Superconducting Qubit Hybrid

Fuente: arXiv
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Main Authors: Boschero, Juan C., Neumann, Niels M. P., van der Schoot, Ward, Phillipson, Frank
Format: Preprint
Published: 2025
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author Boschero, Juan C.
Neumann, Niels M. P.
van der Schoot, Ward
Phillipson, Frank
author_facet Boschero, Juan C.
Neumann, Niels M. P.
van der Schoot, Ward
Phillipson, Frank
contents Distributed quantum computing (DQC) is crucial for high-volume quantum processing in the NISQ era. Many different technologies are utilized to implement a quantum computer, each with a different advantages and disadvantages. Various research is performed on how to implement DQC within a certain technology, but research on DQC between different technologies is rather limited. In this work, we contribute to this latter research line, by implementing the Quantum Phase Estimation algorithm on a superconducting-resonator-atom hybrid system. This system combines a Rydberg atom qubit, as well as a superconducting flux qubit system to perform the algorithm. In addition, Hamiltonian dynamics are studied to analyze noise sources, after which quantum optimal control (GRAPE) is used to optimize gate construction. The results show tradeoffs between GRAPE step size, iterations and noise level.
format Preprint
id arxiv_https___arxiv_org_abs_2505_17842
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Non-Local Phase Estimation with a Rydberg-Superconducting Qubit Hybrid
Boschero, Juan C.
Neumann, Niels M. P.
van der Schoot, Ward
Phillipson, Frank
Quantum Physics
Distributed quantum computing (DQC) is crucial for high-volume quantum processing in the NISQ era. Many different technologies are utilized to implement a quantum computer, each with a different advantages and disadvantages. Various research is performed on how to implement DQC within a certain technology, but research on DQC between different technologies is rather limited. In this work, we contribute to this latter research line, by implementing the Quantum Phase Estimation algorithm on a superconducting-resonator-atom hybrid system. This system combines a Rydberg atom qubit, as well as a superconducting flux qubit system to perform the algorithm. In addition, Hamiltonian dynamics are studied to analyze noise sources, after which quantum optimal control (GRAPE) is used to optimize gate construction. The results show tradeoffs between GRAPE step size, iterations and noise level.
title Non-Local Phase Estimation with a Rydberg-Superconducting Qubit Hybrid
topic Quantum Physics
url https://arxiv.org/abs/2505.17842