Decoherence and fidelity enhancement during shuttling of entangled spin qubits

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Hauptverfasser: Zhang, Yu-Ning, Mokeev, Aleksandr S., Dobrovitski, Viatcheslav V.
Format: Preprint
Veröffentlicht: 2025
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author Zhang, Yu-Ning
Mokeev, Aleksandr S.
Dobrovitski, Viatcheslav V.
author_facet Zhang, Yu-Ning
Mokeev, Aleksandr S.
Dobrovitski, Viatcheslav V.
contents Shuttling of spin qubits between different locations is a key element in many prospective semiconductor systems for quantum information processing, but the shuttled qubits should be protected from decoherence created by time- and space-dependent noises. Since the paths of different spin qubits are interrelated, the noises acting on the shuttled spins exhibit complex and unusual correlations. We appraise the role of these correlations using the concept of trajectories on random sheets, and demonstrate that they can drastically affect efficiency of the coherence protection. These correlations can also be exploited to enhance the shuttling fidelity, and we show that by encoding logical qubit in a state of two consequtively shuttled entangled spins, high fidelity can be achieved even for very slow shuttling. We identify the conditions favoring this encoding, and quantify improvement in the shuttling fidelity in comparison with the single-spin shuttling.
format Preprint
id arxiv_https___arxiv_org_abs_2506_19671
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Decoherence and fidelity enhancement during shuttling of entangled spin qubits
Zhang, Yu-Ning
Mokeev, Aleksandr S.
Dobrovitski, Viatcheslav V.
Mesoscale and Nanoscale Physics
Quantum Physics
Shuttling of spin qubits between different locations is a key element in many prospective semiconductor systems for quantum information processing, but the shuttled qubits should be protected from decoherence created by time- and space-dependent noises. Since the paths of different spin qubits are interrelated, the noises acting on the shuttled spins exhibit complex and unusual correlations. We appraise the role of these correlations using the concept of trajectories on random sheets, and demonstrate that they can drastically affect efficiency of the coherence protection. These correlations can also be exploited to enhance the shuttling fidelity, and we show that by encoding logical qubit in a state of two consequtively shuttled entangled spins, high fidelity can be achieved even for very slow shuttling. We identify the conditions favoring this encoding, and quantify improvement in the shuttling fidelity in comparison with the single-spin shuttling.
title Decoherence and fidelity enhancement during shuttling of entangled spin qubits
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2506.19671