Surface-magnon mediated self-interaction of nitrogen-vacancy centers in diamond
ORAL
Abstract
Hybrid quantum systems consisting of nitrogen-vacancy (NV) centers in diamond and magnons in ferrimagnets have recently attracted much attention as a platform for on-chip long-distance entanglement, interfacing quantum information science with magnonics [1,2]. Here, we experimentally determine the magnon-induced self-interaction of this hybrid system by combining longitudinal (T_1) relaxometry measurements with the fluctuation-dissipation and Kramers-Kronig relations. This self-interaction is a function of the NV-magnon coupling strength and thereby provides an estimate of the magnon-mediated two-qubit interaction. Our results, including the enhanced T_1 relaxation rates caused by magnetostatic surface magnons are quantitatively consistent with a model in which the NV center is coupled to magnons by the magnetic dipole interactions. These findings help build a foundation for the hybrid quantum architecture of spin qubits coupled to magnons.
[1] D. R. Candido, et al., Mater. Quantum. Technol. 1, 011001 (2021)
[2] M. Fukami, et al., PRX Quantum 2, 040314 (2021)
[1] D. R. Candido, et al., Mater. Quantum. Technol. 1, 011001 (2021)
[2] M. Fukami, et al., PRX Quantum 2, 040314 (2021)
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Presenters
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Masaya Fukami
University of Chicago
Authors
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Masaya Fukami
University of Chicago
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Jonathan C Marcks
University of Chicago
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Benjamin S Soloway
University of Chicago
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Denis R Candido
University of Iowa
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Leah R Weiss
University of Chicago
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Sean E Sullivan
Argonne National Laboratory
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Nazar Delegan
Argonne National Laboratory
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F. Joseph F Heremans
Argonne National Laboratory
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Michael E Flatté
University of Iowa, Department of Physics and Astronomy, University of Iowa, IA 52242, USA
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David D Awschalom
University of Chicago