Mapping a 50-spin-qubit network through correlated sensing

Fuente: arXiv
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Bibliographic Details
Main Authors: van de Stolpe, G. L., Kwiatkowski, D. P., Bradley, C. E., Randall, J., Abobeih, M. H., Breitweiser, S. A., Bassett, L. C., Markham, M., Twitchen, D. J., Taminiau, T. H.
Format: Preprint
Published: 2023
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author van de Stolpe, G. L.
Kwiatkowski, D. P.
Bradley, C. E.
Randall, J.
Abobeih, M. H.
Breitweiser, S. A.
Bassett, L. C.
Markham, M.
Twitchen, D. J.
Taminiau, T. H.
author_facet van de Stolpe, G. L.
Kwiatkowski, D. P.
Bradley, C. E.
Randall, J.
Abobeih, M. H.
Breitweiser, S. A.
Bassett, L. C.
Markham, M.
Twitchen, D. J.
Taminiau, T. H.
contents Spins associated to optically accessible solid-state defects have emerged as a versatile platform for exploring quantum simulation, quantum sensing and quantum communication. Pioneering experiments have shown the sensing, imaging, and control of multiple nuclear spins surrounding a single electron-spin defect. However, the accessible size of these spin networks has been constrained by the spectral resolution of current methods. Here, we map a network of 50 coupled spins through high-resolution correlated sensing schemes, using a single nitrogen-vacancy center in diamond. We develop concatenated double-resonance sequences that identify spin-chains through the network. These chains reveal the characteristic spin frequencies and their interconnections with high spectral resolution, and can be fused together to map out the network. Our results provide new opportunities for quantum simulations by increasing the number of available spin qubits. Additionally, our methods might find applications in nano-scale imaging of complex spin systems external to the host crystal.
format Preprint
id arxiv_https___arxiv_org_abs_2307_06939
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Mapping a 50-spin-qubit network through correlated sensing
van de Stolpe, G. L.
Kwiatkowski, D. P.
Bradley, C. E.
Randall, J.
Abobeih, M. H.
Breitweiser, S. A.
Bassett, L. C.
Markham, M.
Twitchen, D. J.
Taminiau, T. H.
Quantum Physics
Mesoscale and Nanoscale Physics
Spins associated to optically accessible solid-state defects have emerged as a versatile platform for exploring quantum simulation, quantum sensing and quantum communication. Pioneering experiments have shown the sensing, imaging, and control of multiple nuclear spins surrounding a single electron-spin defect. However, the accessible size of these spin networks has been constrained by the spectral resolution of current methods. Here, we map a network of 50 coupled spins through high-resolution correlated sensing schemes, using a single nitrogen-vacancy center in diamond. We develop concatenated double-resonance sequences that identify spin-chains through the network. These chains reveal the characteristic spin frequencies and their interconnections with high spectral resolution, and can be fused together to map out the network. Our results provide new opportunities for quantum simulations by increasing the number of available spin qubits. Additionally, our methods might find applications in nano-scale imaging of complex spin systems external to the host crystal.
title Mapping a 50-spin-qubit network through correlated sensing
topic Quantum Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2307.06939